1839302
CHW2VGSR
2018
1
surface-science-reports
50
creator
asc
4169
https://www-ipcms.u-strasbg.fr/plugins/zotpress/
%7B%22status%22%3A%22success%22%2C%22updateneeded%22%3Afalse%2C%22instance%22%3Afalse%2C%22meta%22%3A%7B%22request_last%22%3A0%2C%22request_next%22%3A0%2C%22used_cache%22%3Atrue%7D%2C%22data%22%3A%5B%7B%22key%22%3A%229J6PNMTW%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Agathangelou%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3ED.%20Agathangelou%2C%20Y.%20Orozco-Gonzalez%2C%20M.%20del%20Carmen%20Marin%2C%20P.P.%20Roy%2C%20J.%20Brazard%2C%20H.%20Kandori%2C%20K.-H.%20Jung%2C%20J.%20L%26%23xE9%3Bonard%2C%20T.%20Buckup%2C%20N.%20Ferre%2C%20M.%20Olivucci%2C%20S.%20Haacke%2C%20Effect%20of%20point%20mutations%20on%20the%20ultrafast%20photo-isomerization%20of%20Anabaena%20sensory%20rhodopsin%2C%20in%3A%20Faraday%20Discussions%2C%202018%3A%20pp.%2055%26%23x2013%3B75.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc7fd00200a%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc7fd00200a%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Effect%20of%20point%20mutations%20on%20the%20ultrafast%20photo-isomerization%20of%20Anabaena%20sensory%20rhodopsin%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22D.%22%2C%22lastName%22%3A%22Agathangelou%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Y.%22%2C%22lastName%22%3A%22Orozco-Gonzalez%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22M.%22%2C%22lastName%22%3A%22del%20Carmen%20Marin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22P.%20P.%22%2C%22lastName%22%3A%22Roy%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Johana%22%2C%22lastName%22%3A%22Brazard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22H.%22%2C%22lastName%22%3A%22Kandori%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22K.%20-H.%22%2C%22lastName%22%3A%22Jung%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J%5Cu00e9r%5Cu00e9mie%22%2C%22lastName%22%3A%22L%5Cu00e9onard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22T.%22%2C%22lastName%22%3A%22Buckup%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22N.%22%2C%22lastName%22%3A%22Ferre%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22M.%22%2C%22lastName%22%3A%22Olivucci%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%5D%2C%22abstractNote%22%3A%22Anabaena%20sensory%20rhodopsin%20%28ASR%29%20is%20a%20particular%20microbial%20retinal%20protein%20for%20which%20light-adaptation%20leads%20to%20the%20ability%20to%20bind%20both%20the%20all-trans%2C%2015-anti%20%28AT%29%20and%20the%2013-cis%2C%2015-syn%20%2813C%29%20isomers%20of%20the%20protonated%20Schiff%20base%20of%20retinal%20%28PSBR%29.%20In%20the%20context%20of%20obtaining%20insight%20into%20the%20mechanisms%20by%20which%20retinal%20proteins%20catalyse%20the%20PSBR%20photo-isomerization%20reaction%2C%20ASR%20is%20a%20model%20system%20allowing%20to%20study%2C%20within%20the%20same%20protein%2C%20the%20protein-PSBR%20interactions%20for%20two%20different%20PSBR%20conformers%20at%20the%20same%20time.%20A%20detailed%20analysis%20of%20the%20vibrational%20spectra%20of%20AT%20and%2013C%2C%20and%20their%20photo-products%20in%20wild-type%20ASR%20obtained%20through%20femtosecond%20%28pump-%29%20four-wave-mixing%20is%20reported%20for%20the%20first%20time%2C%20and%20compared%20to%20bacterio-%20and%20channelrhodopsin.%20As%20part%20of%20an%20extensive%20study%20of%20ASR%20mutants%20with%20blue-shifted%20absorption%20spectra%2C%20we%20present%20here%20a%20detailed%20computational%20analysis%20of%20the%20origin%20of%20the%20mutation-induced%20blue-shift%20of%20the%20absorption%20spectra%2C%20and%20identify%20electrostatic%20interactions%20as%20dominating%20steric%20effects%20that%20would%20entail%20a%20red-shift.%20The%20excited%20state%20lifetimes%20and%20isomerization%20reaction%20times%20%28IRT%29%20for%20the%20three%20mutants%20V112N%2C%20W76F%2C%20and%20L83Q%20are%20studied%20experimentally%20by%20femtosecond%20broadband%20transient%20absorption%20spectroscopy.%20Interestingly%2C%20in%20all%20three%20mutants%2C%20isomerization%20is%20accelerated%20for%20AT%20with%20respect%20to%20wild-type%20ASR%2C%20and%20this%20the%20more%2C%20the%20shorter%20the%20wavelength%20of%20maximum%20absorption.%20On%20the%20contrary%2C%20the%2013C%20photo-reaction%20is%20slightly%20slowed%20down%2C%20leading%20to%20an%20inversion%20of%20the%20ESLs%20of%20AT%20and%2013C%2C%20with%20respect%20to%20wt-ASR%2C%20in%20the%20blue-most%20absorbing%20mutant%20L83Q.%20Possible%20mechanisms%20for%20these%20mutation%20effects%2C%20and%20their%20steric%20and%20electrostatic%20origins%20are%20discussed.%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%22Faraday%20Discussions%22%2C%22conferenceName%22%3A%22A%20General%20Discussion%20on%20Photoinduced%20Processes%20in%20Nucleic%20Acids%20and%20Proteins%20was%20held%20in%20Kerala%2C%20India%20on%20the%2011th%2C%2012%20th%20and%2013th%20of%20January%202018.%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc7fd00200a%22%2C%22ISBN%22%3A%22%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc7fd00200a%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222022-02-03T14%3A26%3A02Z%22%7D%7D%2C%7B%22key%22%3A%22Z8DXUPKI%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Allais%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Allais%2C%20D.%20Mailley%2C%20P.%20H%26%23xE9%3Bbraud%2C%20D.%20Ihiawakrim%2C%20V.%20Ball%2C%20F.%20Meyer%2C%20A.%20Hebraud%2C%20G.%20Schlatter%2C%20Polymer-free%20etectrospinning%20of%20tannic%20acid%20and%20cross-Linking%20in%20water%20for%20hybrid%20supramotecular%20nanofibres%2C%20Nanoscale%2010%20%282018%29%209164%26%23x2013%3B9173.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8nr01067f%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8nr01067f%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Polymer-free%20etectrospinning%20of%20tannic%20acid%20and%20cross-Linking%20in%20water%20for%20hybrid%20supramotecular%20nanofibres%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Manon%22%2C%22lastName%22%3A%22Allais%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Domitille%22%2C%22lastName%22%3A%22Mailley%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pascal%22%2C%22lastName%22%3A%22H%5Cu00e9braud%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Dris%22%2C%22lastName%22%3A%22Ihiawakrim%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vincent%22%2C%22lastName%22%3A%22Ball%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Florent%22%2C%22lastName%22%3A%22Meyer%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Anne%22%2C%22lastName%22%3A%22Hebraud%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Guy%22%2C%22lastName%22%3A%22Schlatter%22%7D%5D%2C%22abstractNote%22%3A%22Electrospinning%20is%20the%20process%20of%20choice%20allowing%20the%20preparation%20of%20nanofibrous%20materials%20from%20a%20solution%20usually%20based%20on%20a%20high%20molar%20mass%20polymer.%20The%20solution%20must%20bring%20enough%20chain%20entanglements%20to%20avoid%20any%20breaking%20or%20Rayleigh%20instability%20of%20the%20electrospun%20jet%20resulting%20thus%20in%20the%20deposition%20of%20a%20continuous%20and%20regular%20solid%20nanofibre.%20It%20has%20been%20however%20shown%20that%20some%20few%20non-polymeric%20molecules%20can%20be%20electrospun%20without%20using%20a%20carrier%20polymer.%20We%20demonstrate%20here%20the%20case%20of%20tannic%20acid.%20Indeed%2C%20it%20was%20possible%20to%20electrospin%20this%20molecule%20solubilised%20in%20a%20mixture%20of%20water%20and%20ethanol%20as%20well%20as%20in%20pure%20water.%20Rheology%2C%20dynamic%20light%20scattering%20and%20cryo-TEM%20highlight%20the%20formation%20of%20tannic%20acid%20aggregates%20in%20solution.%20Above%20a%20critical%20concentration%2C%20these%20aggregates%20form%20a%20supramolecular%20interconnected%20network%20strong%20enough%20to%20allow%20the%20electrospinning%20of%20a%20continuous%20and%20regular%20nanofibre.%20The%20resulting%20nanoweb%20is%20mechanically%20stable%20and%20can%20be%20handled%20and%20wrapped.%20Furthermore%2C%20as%20opposed%20to%20the%20other%20small%20molecules%20for%20which%20polymer-free%20electrospinning%20was%20also%20demonstrated%2C%20tannic%20acid%20nanowebs%20can%20be%20efficiently%20cross-linked%20in%20water%20either%20by%20oxidative%20reaction%20with%20sodium%20periodate%20or%2C%20most%20interestingly%2C%20with%20FeIII%20by%20a%20combination%20of%20oxidative%20reaction%20and%20the%20formation%20of%20coordination%20complexes.%20The%20proposed%20electrospinning%20and%20cross-linking%20strategy%20is%20easy%2C%20of%20low%20cost%2C%20and%20scalable%20and%20uses%20non-toxic%20solvents%20as%20well%20as%20biocompatible%20and%20biofunctional%20molecules.%20Furthermore%2C%20thanks%20to%20the%20chelation%20capacity%20of%20tannic%20acid%20having%20the%20ability%20to%20coordinate%20with%20a%20wide%20variety%20of%20metals%2C%20hybrid%20smart%20nanowebs%20can%20be%20envisaged%20for%20diverse%20applications%20such%20as%20biomedical%2C%20catalysis%20as%20well%20as%20environment.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc8nr01067f%22%2C%22ISSN%22%3A%222040-3364%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc8nr01067f%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22DEB5KWFS%22%2C%22WJDNKBGA%22%2C%22TFVWSVG3%22%5D%2C%22dateModified%22%3A%222022-02-10T16%3A20%3A46Z%22%7D%7D%2C%7B%22key%22%3A%22Z23ERPGX%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Azeredo%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EB.%20Azeredo%2C%20A.%20Carton%2C%20C.%20Leuvrey%2C%20C.%20Kiefer%2C%20D.%20Ihawakrim%2C%20S.%20Zafairatos%2C%20M.%20Gallart%2C%20P.%20Gilliot%2C%20B.P.%20Pichon%2C%20Synergistic%20photo%20optical%20and%20magnetic%20properties%20of%20a%20hybrid%20nanocomposite%20consisting%20of%20a%20zinc%20oxide%20nanorod%20array%20decorated%20with%20iron%20oxide%20nanoparticles%2C%20Journal%20of%20Materials%20Chemistry%20C%206%20%282018%29%2010502%26%23x2013%3B10512.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8tc02680g%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8tc02680g%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Synergistic%20photo%20optical%20and%20magnetic%20properties%20of%20a%20hybrid%20nanocomposite%20consisting%20of%20a%20zinc%20oxide%20nanorod%20array%20decorated%20with%20iron%20oxide%20nanoparticles%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Brandon%22%2C%22lastName%22%3A%22Azeredo%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Anne%22%2C%22lastName%22%3A%22Carton%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22C%5Cu00e9dric%22%2C%22lastName%22%3A%22Leuvrey%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22C%5Cu00e9line%22%2C%22lastName%22%3A%22Kiefer%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Dris%22%2C%22lastName%22%3A%22Ihawakrim%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Spyridon%22%2C%22lastName%22%3A%22Zafairatos%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mathieu%22%2C%22lastName%22%3A%22Gallart%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pierre%22%2C%22lastName%22%3A%22Gilliot%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Benoit%20P.%22%2C%22lastName%22%3A%22Pichon%22%7D%5D%2C%22abstractNote%22%3A%22Multifunctional%20nanocomposite%20materiaLs%20recently%20emerged%20as%20a%20powerful%20concept%20because%20they%20offer%20to%20combine%20physicaL%20properties%20of%20different%20inorganic%20materiaLs.%20Besides%20the%20simple%20combination%20of%20physicaL%20properties%2C%20the%20real%20challenge%20is%20to%20provide%20high%20control%20of%20the%20structure%20of%20nanocomposites%20%28i.e.%20the%20spatial%20arrangement%20of%20the%20two%20entities%2C%20interface%20or%20separating%20distance%2C%20etc.%29.%20In%20this%20case%2C%20synergy%20between%20the%20two%20entities%20may%20be%20favoured%20in%20order%20to%20dramatically%20enhance%20the%20physicaL%20properties.%20Herein%2C%20we%20report%20on%20a%20multifunctional%20hybrid%20nanocomposite%20material%20consisting%20of%20a%20zinc%20oxide%20%28ZnO%29%20nanorod%20array%20decorated%20with%20iron%20oxide%20%28Fe3-delta%20O4%29%20nanoparticles%20through%20a%201%2C4-phenyLenebis%28phosphonic%20acid%29%20%28PBA%29%20Linkage.%20We%20report%20on%20an%20original%2C%20easy%20to%20process%2C%20and%20versatile%20preparation%20method%20based%20on%20self-assembly%20mediated%20by%20specific%20interactions%20between%20metal%20oxides%20and%20phosphonic%20acid%20groups.%20This%20strategy%20allows%20grafting%20irreversibly%20Fe3-delta%20O4%20nanoparticles%20to%20ZnO%20nanorod%20arrays%20while%20preserving%20the%20pristine%20crystal%20structure%20of%20both%20inorganic%20entities.%20The%20structure%20and%20physicaL%20properties%20of%20such%20hybrid%20nanocomposites%20were%20investigated%20by%20means%20of%20a%20Large%20panel%20of%20characterisation%20techniques%3A%20SEM%2C%20TEM%2C%20FTIR%2C%20XPS%2C%20SQUID%20and%20PL.%20The%20assembly%20mechanism%20was%20studied%20by%20varying%20several%20experimental%20parameters%2C%20such%20as%20the%20concentration%20of%20the%20Ligand%20solution%20and%20nanopartide%20suspension%20as%20weLL%20as%20the%20reaction%20time%20of%20ZnO%20arrays%20in%20the%20aforementioned%20suspensions.%20Finally%2C%20we%20show%20for%20the%20first%20time%20that%20the%20ZnO%5C%2FPBA%5C%2FFe3-delta%20O4%20nanocomposite%20displays%20enhanced%20magnetic%20and%20opticaL%20properties%20as%20a%20resuLt%20of%20dual%20synergy.%20We%20show%20unambiguously%20that%20a%20ZnO%20nanorod%20array%20acts%20as%20a%20very%20efficient%20anisotropic%20scaffold%20which%20favours%20unidirectional%20dipolar%20interactions%20and%20enhances%20the%20in-axis%20collective%20magnetic%20properties%20of%20Fe3-delta%20O4%20nanoparticles%20%28a%2010-fold%20increase%20of%20the%20coercive%20field%20in%20comparison%20to%20the%20same%20magnetic%20nanoparticles%20in%20the%20powder%20state%29.%20ZnO%20nanorods%20also%20benefit%20from%20Fe3-delta%20O4%20nanoparticles%20by%20enhancement%20of%20their%20opticaL%20properties%20in%20the%20visible%20range%20%28a%202-fold%20increase%20of%20PL%20intensity%20with%20respect%20to%20bare%20ZnO%20nanorods%29%20which%20we%20propose%20to%20resuLt%20from%20photon%20energy%20transfer.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc8tc02680g%22%2C%22ISSN%22%3A%222050-7526%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc8tc02680g%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22DEB5KWFS%22%2C%22HVHG5Z72%22%2C%22WJDNKBGA%22%2C%226IWM732K%22%2C%22CF4ZI7HM%22%2C%22UBUT97QT%22%5D%2C%22dateModified%22%3A%222021-10-20T12%3A41%3A54Z%22%7D%7D%2C%7B%22key%22%3A%22EBI84IE9%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Bhat%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EV.%20Bhat%2C%20R.%20Cogdell%2C%20C.E.%20Crespo-Hern%26%23xE1%3Bndez%2C%20A.%20Datta%2C%20A.%20De%2C%20S.%20Haacke%2C%20J.%20Helliwell%2C%20R.%20Improta%2C%20J.%20Joseph%2C%20T.%20Karsili%2C%20B.%20Kohler%2C%20R.%20Krishnan%2C%20M.%20L%2C%20F.%20Lewis%2C%20I.%20Mandal%2C%20D.%20Markovitsi%2C%20P.P.%20Mishra%2C%20S.%20Paul%2C%20G.%20Periyasamy%2C%20P.I.%20Pradeepkumar%2C%20P.%20Roy%20Chowdhury%2C%20M.%20Sarangi%2C%20D.%20Sasikumar%2C%20I.%20Schapiro%2C%20G.F.X.%20Schertler%2C%20I.%20Schlichting%2C%20J.%20Segarra-Mart%26%23xED%3B%2C%20R.%20Swaminathan%2C%20V.%20V%2C%20R.%20van%20Grondelle%2C%20R.%20Varghese%2C%20R.%20Venkatramani%2C%20Photocrosslinking%20between%20nucleic%20acids%20and%20proteins%3A%20general%20discussion%2C%20in%3A%20Faraday%20Discussions%2C%202018%3A%20pp.%20283%26%23x2013%3B306.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC8FD90005A%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC8FD90005A%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Photocrosslinking%20between%20nucleic%20acids%20and%20proteins%3A%20general%20discussion%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vinayak%22%2C%22lastName%22%3A%22Bhat%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Richard%22%2C%22lastName%22%3A%22Cogdell%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Carlos%20E.%22%2C%22lastName%22%3A%22Crespo-Hern%5Cu00e1ndez%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ankona%22%2C%22lastName%22%3A%22Datta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Arijit%22%2C%22lastName%22%3A%22De%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22John%22%2C%22lastName%22%3A%22Helliwell%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Roberto%22%2C%22lastName%22%3A%22Improta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Joshy%22%2C%22lastName%22%3A%22Joseph%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Tolga%22%2C%22lastName%22%3A%22Karsili%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bern%22%2C%22lastName%22%3A%22Kohler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Retheesh%22%2C%22lastName%22%3A%22Krishnan%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mahil%22%2C%22lastName%22%3A%22L%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Frederick%22%2C%22lastName%22%3A%22Lewis%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Imon%22%2C%22lastName%22%3A%22Mandal%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Dimitra%22%2C%22lastName%22%3A%22Markovitsi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Padmaja%20P.%22%2C%22lastName%22%3A%22Mishra%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sneha%22%2C%22lastName%22%3A%22Paul%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ganga%22%2C%22lastName%22%3A%22Periyasamy%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22P.%20I.%22%2C%22lastName%22%3A%22Pradeepkumar%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Priyadarshi%22%2C%22lastName%22%3A%22Roy%20Chowdhury%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Manas%22%2C%22lastName%22%3A%22Sarangi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Devika%22%2C%22lastName%22%3A%22Sasikumar%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Igor%22%2C%22lastName%22%3A%22Schapiro%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gebhard%20F.%20X.%22%2C%22lastName%22%3A%22Schertler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ilme%22%2C%22lastName%22%3A%22Schlichting%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Javier%22%2C%22lastName%22%3A%22Segarra-Mart%5Cu00ed%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rajaram%22%2C%22lastName%22%3A%22Swaminathan%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vishnu%22%2C%22lastName%22%3A%22V%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rienk%22%2C%22lastName%22%3A%22van%20Grondelle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Reji%22%2C%22lastName%22%3A%22Varghese%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ravindra%22%2C%22lastName%22%3A%22Venkatramani%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%22Faraday%20Discussions%22%2C%22conferenceName%22%3A%22A%20General%20Discussion%20on%20Photoinduced%20Processes%20in%20Nucleic%20Acids%20and%20Proteins%20was%20held%20in%20Kerala%2C%20India%20on%20the%2011th%2C%2012%20th%20and%2013th%20of%20January%202018.%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2FC8FD90005A%22%2C%22ISBN%22%3A%22%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2FC8FD90005A%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222022-02-08T08%3A16%3A30Z%22%7D%7D%2C%7B%22key%22%3A%22HU7R697D%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Buckup%20and%20L%5Cu00e9onard%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3ET.%20Buckup%2C%20J.%20L%26%23xE9%3Bonard%2C%20Multidimensional%20Vibrational%20Coherence%20Spectroscopy%2C%20Topics%20in%20Current%20Chemistry%20376%20%282018%29%2035.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1007%5C%2Fs41061-018-0213-4%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1007%5C%2Fs41061-018-0213-4%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Multidimensional%20Vibrational%20Coherence%20Spectroscopy%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Tiago%22%2C%22lastName%22%3A%22Buckup%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J%5Cu00e9r%5Cu00e9mie%22%2C%22lastName%22%3A%22L%5Cu00e9onard%22%7D%5D%2C%22abstractNote%22%3A%22Multidimensional%20vibrational%20coherence%20spectroscopy%20has%20been%20part%20of%20laser%20spectroscopy%20since%20the%201990s%20and%20its%20role%20in%20several%20areas%20of%20science%20has%20continuously%20been%20increasing.%20In%20this%20contribution%2C%20after%20introducing%20the%20principals%20of%20vibrational%20coherence%20spectroscopy%20%28VCS%29%2C%20we%20review%20the%20three%20most%20widespread%20experimental%20methods%20for%20multidimensional%20VCS%20%28multi-VCS%29%2C%20namely%20femtosecond%20stimulated%20Raman%20spectroscopy%2C%20pump-impulsive%20vibrational%20spectroscopy%2C%20and%20pump-degenerate%20four%20wave-mixing.%20Focus%20is%20given%20to%20the%20generation%20and%20typical%20analysis%20of%20the%20respective%20signals%20in%20the%20time%20and%20spectral%20domains.%20Critical%20aspects%20of%20all%20multidimensional%20techniques%20are%20the%20challenges%20in%20the%20data%20interpretation%20due%20to%20the%20existence%20of%20several%20possible%20contributions%20to%20the%20observed%20signals%20or%20to%20optical%20interferences%20and%20how%20to%20overcome%20the%20corresponding%20difficulties%20by%20exploiting%20experimental%20parameters%20including%20higher-order%20nonlinear%20effects.%20We%20overview%20how%20multidimensional%20vibrational%20coherence%20spectroscopy%20can%20assist%20a%20chemist%20in%20understanding%20how%20molecular%20structural%20changes%20and%20eventually%20photochemical%20reactions%20take%20place.%20In%20order%20to%20illustrate%20the%20application%20of%20the%20techniques%20described%20in%20this%20chapter%2C%20two%20molecular%20systems%20are%20discussed%20in%20more%20detail%20in%20regard%20to%20the%20vibrational%20dynamics%20in%20the%20electronic%20excited%20states%3A%20%281%29%20carotenoids%20as%20a%20non-reactive%20system%20and%20%282%29%20stilbene%20derivatives%20as%20a%20reactive%20system.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1007%5C%2Fs41061-018-0213-4%22%2C%22ISSN%22%3A%222365-0869%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1007%5C%2Fs41061-018-0213-4%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222019-01-15T09%3A50%3A33Z%22%7D%7D%2C%7B%22key%22%3A%227HAGJVTK%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Catal%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EE.%20Catal%2C%20E.%20Keles%2C%20N.%20Seferoglu%2C%20S.%20Achelle%2C%20A.%20Barsella%2C%20F.R.%20le%20Guen%2C%20Z.%20Seferoglu%2C%20Triphenylamine-based%20allylidenemalononitrile%20chromophores%3A%20synthesis%2C%20and%20photophysical%20and%20second-order%20nonlinear%20optical%20properties%2C%20New%20Journal%20of%20Chemistry%2042%20%282018%29%2015052%26%23x2013%3B15060.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8nj02794c%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8nj02794c%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Triphenylamine-based%20allylidenemalononitrile%20chromophores%3A%20synthesis%2C%20and%20photophysical%20and%20second-order%20nonlinear%20optical%20properties%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Emine%22%2C%22lastName%22%3A%22Catal%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ergin%22%2C%22lastName%22%3A%22Keles%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nurgul%22%2C%22lastName%22%3A%22Seferoglu%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sylvain%22%2C%22lastName%22%3A%22Achelle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Alberto%22%2C%22lastName%22%3A%22Barsella%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Francoise%20Robin%22%2C%22lastName%22%3A%22le%20Guen%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Zeynel%22%2C%22lastName%22%3A%22Seferoglu%22%7D%5D%2C%22abstractNote%22%3A%22A%20series%20of%20chromophores%20based%20on%20a%20mono-%2C%20di-%20or%20tri-substituted%20triphenylamine%20core%20and%20allylidenemalononitrile%20fragments%20has%20been%20designed.%20The%20linear%20and%20second%20order%20nonlinear%20optical%20properties%20as%20well%20as%20thermal%20stability%20of%20the%20chromophores%20have%20been%20studied%20experimentally.%20Structure-property%20relationships%2C%20in%20terms%20of%20the%20branching%20effect%20on%20the%20triphenylamine%20core%20and%20the%20influence%20of%20the%20aniline%5C%2Fcoumarin%20part%20on%20the%20photophysical%20properties%20and%20NLO%20response%2C%20have%20been%20highlighted.%20The%20experimental%20results%20have%20been%20rationalized%20by%20theoretical%20calculations.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc8nj02794c%22%2C%22ISSN%22%3A%221144-0546%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc8nj02794c%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22WWGPR7DV%22%5D%2C%22dateModified%22%3A%222019-01-15T09%3A50%3A53Z%22%7D%7D%2C%7B%22key%22%3A%223CVH4IRL%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Chandra%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EA.%20Chandra%2C%20R.%20Cogdell%2C%20C.E.%20Crespo-Hern%26%23xE1%3Bndez%2C%20A.%20Datta%2C%20A.%20Giussani%2C%20S.%20Haacke%2C%20J.%20Helliwell%2C%20R.%20Improta%2C%20R.S.%20Jayasree%2C%20M.%20Jones%2C%20T.%20Karsili%2C%20B.%20Kohler%2C%20M.%20L%2C%20I.%20Mandal%2C%20D.%20Markovitsi%2C%20H.%20Medhi%2C%20P.P.%20Mishra%2C%20P.I.%20Pradeepkumar%2C%20P.%20Roy%20Chowdhury%2C%20M.%20Sarangi%2C%20I.%20Schapiro%2C%20I.%20Schlichting%2C%20J.%20Segarra-Mart%26%23xED%3B%2C%20A.%20Sharma%2C%20V.%20V%2C%20R.%20van%20Grondelle%2C%20A.%20Watts%2C%20Light%20induced%20damage%20and%20repair%20in%20nucleic%20acids%20and%20proteins%3A%20general%20discussion%2C%20in%3A%20Faraday%20Discussions%2C%202018%3A%20pp.%20389%26%23x2013%3B408.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC8FD90006J%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC8FD90006J%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Light%20induced%20damage%20and%20repair%20in%20nucleic%20acids%20and%20proteins%3A%20general%20discussion%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Amitava%22%2C%22lastName%22%3A%22Chandra%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Richard%22%2C%22lastName%22%3A%22Cogdell%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Carlos%20E.%22%2C%22lastName%22%3A%22Crespo-Hern%5Cu00e1ndez%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ankona%22%2C%22lastName%22%3A%22Datta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Angelo%22%2C%22lastName%22%3A%22Giussani%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22John%22%2C%22lastName%22%3A%22Helliwell%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Roberto%22%2C%22lastName%22%3A%22Improta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ramapurath%20S.%22%2C%22lastName%22%3A%22Jayasree%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mike%22%2C%22lastName%22%3A%22Jones%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Tolga%22%2C%22lastName%22%3A%22Karsili%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bern%22%2C%22lastName%22%3A%22Kohler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mahil%22%2C%22lastName%22%3A%22L%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Imon%22%2C%22lastName%22%3A%22Mandal%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Dimitra%22%2C%22lastName%22%3A%22Markovitsi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Himani%22%2C%22lastName%22%3A%22Medhi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Padmaja%20P.%22%2C%22lastName%22%3A%22Mishra%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22P.%20I.%22%2C%22lastName%22%3A%22Pradeepkumar%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Priyadarshi%22%2C%22lastName%22%3A%22Roy%20Chowdhury%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Manas%22%2C%22lastName%22%3A%22Sarangi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Igor%22%2C%22lastName%22%3A%22Schapiro%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ilme%22%2C%22lastName%22%3A%22Schlichting%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Javier%22%2C%22lastName%22%3A%22Segarra-Mart%5Cu00ed%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Amit%22%2C%22lastName%22%3A%22Sharma%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vishnu%22%2C%22lastName%22%3A%22V%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rienk%22%2C%22lastName%22%3A%22van%20Grondelle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Anthony%22%2C%22lastName%22%3A%22Watts%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%22Faraday%20Discussions%22%2C%22conferenceName%22%3A%22A%20General%20Discussion%20on%20Photoinduced%20Processes%20in%20Nucleic%20Acids%20and%20Proteins%20was%20held%20in%20Kerala%2C%20India%20on%20the%2011th%2C%2012%20th%20and%2013th%20of%20January%202018.%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2FC8FD90006J%22%2C%22ISBN%22%3A%22%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2FC8FD90006J%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222022-02-08T08%3A17%3A14Z%22%7D%7D%2C%7B%22key%22%3A%22NGRCSYMB%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Chandra%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EA.%20Chandra%2C%20A.%20Chattopadhyay%2C%20R.%20Cogdell%2C%20A.%20Datta%2C%20A.%20De%2C%20S.%20Dhamija%2C%20M.%20Golla%2C%20S.%20Haacke%2C%20M.%20Hariharan%2C%20J.%20Helliwell%2C%20R.%20Improta%2C%20R.S.%20Jayasree%2C%20M.%20Jones%2C%20J.%20Joseph%2C%20T.%20Karsili%2C%20B.%20Kohler%2C%20R.%20Krishnan%2C%20I.%20Mandal%2C%20D.%20Markovitsi%2C%20H.%20Medhi%2C%20P.P.%20Mishra%2C%20P.%20Roy%20Chowdhury%2C%20M.%20Sarangi%2C%20I.%20Schlichting%2C%20J.%20Seddon%2C%20A.%20Sharma%2C%20A.%20Siriki%2C%20R.%20Swaminathan%2C%20R.%20van%20Grondelle%2C%20R.%20Varghese%2C%20R.%20Venkatramani%2C%20A.%20Watts%2C%20Bionanophotonics%3A%20general%20discussion%2C%20in%3A%20Faraday%20Discussions%2C%202018%3A%20pp.%20491%26%23x2013%3B512.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC8FD90007H%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC8FD90007H%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Bionanophotonics%3A%20general%20discussion%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Amitava%22%2C%22lastName%22%3A%22Chandra%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Amitabha%22%2C%22lastName%22%3A%22Chattopadhyay%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Richard%22%2C%22lastName%22%3A%22Cogdell%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ankona%22%2C%22lastName%22%3A%22Datta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Arijit%22%2C%22lastName%22%3A%22De%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Shaina%22%2C%22lastName%22%3A%22Dhamija%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Murali%22%2C%22lastName%22%3A%22Golla%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mahesh%22%2C%22lastName%22%3A%22Hariharan%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22John%22%2C%22lastName%22%3A%22Helliwell%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Roberto%22%2C%22lastName%22%3A%22Improta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ramapurath%20S.%22%2C%22lastName%22%3A%22Jayasree%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mike%22%2C%22lastName%22%3A%22Jones%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Joshy%22%2C%22lastName%22%3A%22Joseph%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Tolga%22%2C%22lastName%22%3A%22Karsili%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bern%22%2C%22lastName%22%3A%22Kohler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Retheesh%22%2C%22lastName%22%3A%22Krishnan%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Imon%22%2C%22lastName%22%3A%22Mandal%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Dimitra%22%2C%22lastName%22%3A%22Markovitsi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Himani%22%2C%22lastName%22%3A%22Medhi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Padmaja%20P.%22%2C%22lastName%22%3A%22Mishra%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Priyadarshi%22%2C%22lastName%22%3A%22Roy%20Chowdhury%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Manas%22%2C%22lastName%22%3A%22Sarangi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ilme%22%2C%22lastName%22%3A%22Schlichting%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22John%22%2C%22lastName%22%3A%22Seddon%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Amit%22%2C%22lastName%22%3A%22Sharma%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Atchimnaidu%22%2C%22lastName%22%3A%22Siriki%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rajaram%22%2C%22lastName%22%3A%22Swaminathan%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rienk%22%2C%22lastName%22%3A%22van%20Grondelle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Reji%22%2C%22lastName%22%3A%22Varghese%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ravindra%22%2C%22lastName%22%3A%22Venkatramani%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Anthony%22%2C%22lastName%22%3A%22Watts%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%22Faraday%20Discussions%22%2C%22conferenceName%22%3A%22A%20General%20Discussion%20on%20Photoinduced%20Processes%20in%20Nucleic%20Acids%20and%20Proteins%20was%20held%20in%20Kerala%2C%20India%20on%20the%2011th%2C%2012%20th%20and%2013th%20of%20January%202018.%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2FC8FD90007H%22%2C%22ISBN%22%3A%22%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2FC8FD90007H%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222022-02-08T08%3A16%3A53Z%22%7D%7D%2C%7B%22key%22%3A%22G7ZBW9F5%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Charbonniere%20and%20Haacke%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EL.%20Charbonniere%2C%20S.%20Haacke%2C%2028th%20International%20Conference%20on%20Photochemistry%20%28ICP%202017%29%3A%20an%20introduction%20by%20the%20Guest%20Editors%2C%20Photochemical%20%26amp%3B%20Photobiological%20Sciences%2017%20%282018%29%201280%26%23x2013%3B1281.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8pp90040j%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8pp90040j%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%2228th%20International%20Conference%20on%20Photochemistry%20%28ICP%202017%29%3A%20an%20introduction%20by%20the%20Guest%20Editors%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22L.%22%2C%22lastName%22%3A%22Charbonniere%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc8pp90040j%22%2C%22ISSN%22%3A%221474-905X%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc8pp90040j%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222019-01-15T10%3A09%3A10Z%22%7D%7D%2C%7B%22key%22%3A%22CLBGLKJU%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Chattopadhyay%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EA.%20Chattopadhyay%2C%20R.%20Cogdell%2C%20C.E.%20Crespo-Hern%26%23xE1%3Bndez%2C%20A.%20Datta%2C%20A.%20De%2C%20S.%20Haacke%2C%20M.%20Hariharan%2C%20J.%20Helliwell%2C%20A.%20Hughes%2C%20R.%20Improta%2C%20M.%20Jones%2C%20J.%20Joseph%2C%20T.%20Karsili%2C%20B.%20Kohler%2C%20R.%20Krishnan%2C%20A.%20Kuriakose%2C%20M.%20L%2C%20D.%20Markovitsi%2C%20H.%20Medhi%2C%20G.%20Periyasamy%2C%20P.I.%20Pradeepkumar%2C%20P.%20Roy%20Chowdhury%2C%20M.%20Sarangi%2C%20I.%20Schapiro%2C%20G.F.X.%20Schertler%2C%20I.%20Schlichting%2C%20J.%20Segarra-Mart%26%23xED%3B%2C%20R.%20Swaminathan%2C%20V.%20V%2C%20R.%20van%20Grondelle%2C%20R.K.%20Venkatraman%2C%20R.%20Venkatramani%2C%20A.%20Watts%2C%20Light%20induced%20charge%20and%20energy%20transport%20in%20nucleic%20acids%20and%20proteins%3A%20general%20discussion%2C%20in%3A%20Faraday%20Discussions%2C%202018%3A%20pp.%20153%26%23x2013%3B180.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC8FD90004C%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC8FD90004C%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Light%20induced%20charge%20and%20energy%20transport%20in%20nucleic%20acids%20and%20proteins%3A%20general%20discussion%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Amitabha%22%2C%22lastName%22%3A%22Chattopadhyay%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Richard%22%2C%22lastName%22%3A%22Cogdell%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Carlos%20E.%22%2C%22lastName%22%3A%22Crespo-Hern%5Cu00e1ndez%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ankona%22%2C%22lastName%22%3A%22Datta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Arijit%22%2C%22lastName%22%3A%22De%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mahesh%22%2C%22lastName%22%3A%22Hariharan%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22John%22%2C%22lastName%22%3A%22Helliwell%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ashley%22%2C%22lastName%22%3A%22Hughes%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Roberto%22%2C%22lastName%22%3A%22Improta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mike%22%2C%22lastName%22%3A%22Jones%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Joshy%22%2C%22lastName%22%3A%22Joseph%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Tolga%22%2C%22lastName%22%3A%22Karsili%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bern%22%2C%22lastName%22%3A%22Kohler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Retheesh%22%2C%22lastName%22%3A%22Krishnan%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Anvy%22%2C%22lastName%22%3A%22Kuriakose%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mahil%22%2C%22lastName%22%3A%22L%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Dimitra%22%2C%22lastName%22%3A%22Markovitsi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Himani%22%2C%22lastName%22%3A%22Medhi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ganga%22%2C%22lastName%22%3A%22Periyasamy%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22P.%20I.%22%2C%22lastName%22%3A%22Pradeepkumar%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Priyadarshi%22%2C%22lastName%22%3A%22Roy%20Chowdhury%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Manas%22%2C%22lastName%22%3A%22Sarangi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Igor%22%2C%22lastName%22%3A%22Schapiro%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gebhard%20F.%20X.%22%2C%22lastName%22%3A%22Schertler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ilme%22%2C%22lastName%22%3A%22Schlichting%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Javier%22%2C%22lastName%22%3A%22Segarra-Mart%5Cu00ed%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rajaram%22%2C%22lastName%22%3A%22Swaminathan%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vishnu%22%2C%22lastName%22%3A%22V%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rienk%22%2C%22lastName%22%3A%22van%20Grondelle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ravi%20Kumar%22%2C%22lastName%22%3A%22Venkatraman%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ravindra%22%2C%22lastName%22%3A%22Venkatramani%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Anthony%22%2C%22lastName%22%3A%22Watts%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%22Faraday%20Discussions%22%2C%22conferenceName%22%3A%22A%20General%20Discussion%20on%20Photoinduced%20Processes%20in%20Nucleic%20Acids%20and%20Proteins%20was%20held%20in%20Kerala%2C%20India%20on%20the%2011th%2C%2012%20th%20and%2013th%20of%20January%202018.%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2FC8FD90004C%22%2C%22ISBN%22%3A%22%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2FC8FD90004C%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222022-02-08T08%3A17%3A34Z%22%7D%7D%2C%7B%22key%22%3A%229G7S5HUR%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Deb%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Deb%2C%20P.%20Molho%2C%20B.%20Barbara%2C%20J.-Y.%20Bigot%2C%20Controlling%20laser-induced%20magnetization%20reversal%20dynamics%20in%20a%20rare-earth%20iron%20garnet%20across%20the%20magnetization%20compensation%20point%2C%20Physical%20Review%20B%2097%20%282018%29%20134419.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevB.97.134419%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevB.97.134419%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Controlling%20laser-induced%20magnetization%20reversal%20dynamics%20in%20a%20rare-earth%20iron%20garnet%20across%20the%20magnetization%20compensation%20point%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marwan%22%2C%22lastName%22%3A%22Deb%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pierre%22%2C%22lastName%22%3A%22Molho%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bernard%22%2C%22lastName%22%3A%22Barbara%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jean-Yves%22%2C%22lastName%22%3A%22Bigot%22%7D%5D%2C%22abstractNote%22%3A%22In%20this%20work%20we%20explore%20the%20ultrafast%20magnetization%20dynamics%20induced%20by%20femtosecond%20laser%20pulses%20in%20a%20doped%20film%20of%20gadolinium%20iron%20garnet%20over%20a%20broad%20temperature%20range%20including%20the%20magnetization%20compensation%20point%20T-M.%20By%20exciting%20the%20phonon-assisted%20S-6%20-%3E%284%29G%20and%20S-6%20-%3E%20P-4%20electronic%20d-d%20transitions%20simultaneously%20by%20one-%20and%20two-photon%20absorption%20processes%2C%20we%20find%20out%20that%20the%20transfer%20of%20heat%20energy%20from%20the%20lattice%20to%20the%20spin%20has%2C%20at%20a%20temperature%20slightly%20below%20T-M%2C%20a%20large%20influence%20on%20the%20magnetization%20dynamics.%20In%20particular%2C%20we%20show%20that%20the%20speed%20and%20the%20amplitude%20of%20the%20magnetization%20dynamics%20can%20be%20strongly%20increased%20when%20increasing%20either%20the%20external%20magnetic%20field%20or%20the%20laser%20energy%20density.%20The%20obtained%20results%20are%20explained%20by%20a%20magnetization%20reversal%20process%20across%20T-M.%20Furthermore%2C%20we%20find%20that%20the%20dynamics%20has%20unusual%20characteristics%20which%20can%20be%20understood%20by%20considering%20the%20weak%20spin-phonon%20coupling%20in%20magnetic%20garnets.%20These%20results%20open%20new%20perspectives%20for%20controlling%20the%20magnetic%20state%20of%20magnetic%20dielectrics%20using%20an%20ultrashort%20optically%20induced%20heat%20pulse.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1103%5C%2FPhysRevB.97.134419%22%2C%22ISSN%22%3A%222469-9950%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1103%5C%2FPhysRevB.97.134419%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22JZU5CN8N%22%5D%2C%22dateModified%22%3A%222018-06-05T09%3A00%3A18Z%22%7D%7D%2C%7B%22key%22%3A%22QBVP9ZMS%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Doppagne%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EB.%20Doppagne%2C%20M.C.%20Chong%2C%20H.%20Bulou%2C%20A.%20Boeglin%2C%20F.%20Scheurer%2C%20G.%20Schull%2C%20Electrofluorochromism%20at%20the%20single-molecule%20level%2C%20Science%20361%20%282018%29%20251%26%23x2013%3B254.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1126%5C%2Fscience.aat1603%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1126%5C%2Fscience.aat1603%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Electrofluorochromism%20at%20the%20single-molecule%20level%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Benjamin%22%2C%22lastName%22%3A%22Doppagne%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Michael%20C.%22%2C%22lastName%22%3A%22Chong%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Herv%5Cu00e9%22%2C%22lastName%22%3A%22Bulou%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Alex%22%2C%22lastName%22%3A%22Boeglin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Fabrice%22%2C%22lastName%22%3A%22Scheurer%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Guillaume%22%2C%22lastName%22%3A%22Schull%22%7D%5D%2C%22abstractNote%22%3A%22The%20interplay%20between%20the%20oxidation%20state%20and%20the%20optical%20properties%20of%20molecules%20is%20important%20for%20applications%20in%20displays%2C%20sensors%2C%20and%20molecular-based%20memories.%20The%20fundamental%20mechanisms%20occurring%20at%20the%20level%20of%20a%20single%20molecule%20have%20been%20difficult%20to%20probe.%20We%20used%20a%20scanning%20tunneling%20microscope%20%28STM%29%20to%20characterize%20and%20control%20the%20fluorescence%20of%20a%20single%20zinc-phthalocyanine%20radical%20cation%20adsorbed%20on%20a%20sodium%20chloridecovered%20gold%20%28111%29%20sample.%20The%20neutral%20and%20oxidized%20states%20of%20the%20molecule%20were%20identified%20on%20the%20basis%20of%20their%20fluorescence%20spectra%2C%20which%20revealed%20very%20different%20emission%20energies%20and%20vibronic%20fingerprints.%20The%20emission%20of%20the%20charged%20molecule%20was%20controlled%20by%20tuning%20the%20thickness%20of%20the%20insulator%20and%20the%20plasmons%20localized%20at%20the%20apex%20of%20the%20STM%20tip.%20In%20addition%2C%20subnanometric%20variations%20of%20the%20tip%20position%20were%20used%20to%20investigate%20the%20charging%20and%20electroluminescence%20mechanisms.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1126%5C%2Fscience.aat1603%22%2C%22ISSN%22%3A%220036-8075%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1126%5C%2Fscience.aat1603%22%2C%22collections%22%3A%5B%229USMFXMV%22%2C%22CHW2VGSR%22%2C%22DEB5KWFS%22%2C%22PVWR7FJK%22%2C%22ISRWITRA%22%5D%2C%22dateModified%22%3A%222021-10-20T12%3A57%3A12Z%22%7D%7D%2C%7B%22key%22%3A%22NX8PRHQH%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Duchanois%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3ET.%20Duchanois%2C%20L.%20Liu%2C%20M.%20Pastore%2C%20A.%20Monari%2C%20C.%20Cebri%26%23xE1%3Bn%2C%20Y.%20Trolez%2C%20M.%20Darari%2C%20K.%20Magra%2C%20A.%20Franc%26%23xE9%3Bs-Monerris%2C%20E.%20Domenichini%2C%20M.%20Beley%2C%20X.%20Assfeld%2C%20S.%20Haacke%2C%20P.C.%20Gros%2C%20NHC-Based%20Iron%20Sensitizers%20for%20DSSCs%2C%20Inorganics%206%20%282018%29%2063.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.3390%5C%2Finorganics6020063%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.3390%5C%2Finorganics6020063%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22NHC-Based%20Iron%20Sensitizers%20for%20DSSCs%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Thibaut%22%2C%22lastName%22%3A%22Duchanois%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Li%22%2C%22lastName%22%3A%22Liu%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mariachiara%22%2C%22lastName%22%3A%22Pastore%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Antonio%22%2C%22lastName%22%3A%22Monari%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Cristina%22%2C%22lastName%22%3A%22Cebri%5Cu00e1n%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Yann%22%2C%22lastName%22%3A%22Trolez%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mohamed%22%2C%22lastName%22%3A%22Darari%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Kevin%22%2C%22lastName%22%3A%22Magra%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Antonio%22%2C%22lastName%22%3A%22Franc%5Cu00e9s-Monerris%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Edoardo%22%2C%22lastName%22%3A%22Domenichini%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marc%22%2C%22lastName%22%3A%22Beley%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Xavier%22%2C%22lastName%22%3A%22Assfeld%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Philippe%20C.%22%2C%22lastName%22%3A%22Gros%22%7D%5D%2C%22abstractNote%22%3A%22Nanostructured%20dye-sensitized%20solar%20cells%20%28DSSCs%29%20are%20promising%20photovoltaic%20devices%20because%20of%20their%20low%20cost%20and%20transparency.%20Ruthenium%20polypyridine%20complexes%20have%20long%20been%20considered%20as%20lead%20sensitizers%20for%20DSSCs%2C%20allowing%20them%20to%20reach%20up%20to%2011%25%20conversion%20efficiency.%20However%2C%20ruthenium%20suffers%20from%20serious%20drawbacks%20potentially%20limiting%20its%20widespread%20applicability%2C%20mainly%20related%20to%20its%20potential%20toxicity%20and%20scarcity.%20This%20has%20motivated%20continuous%20research%20efforts%20to%20develop%20valuable%20alternatives%20from%20cheap%20earth-abundant%20metals%2C%20and%20among%20them%2C%20iron%20is%20particularly%20attractive.%20Making%20iron%20complexes%20applicable%20in%20DSSCs%20is%20highly%20challenging%20due%20to%20an%20ultrafast%20deactivation%20of%20the%20metal%26ndash%3Bligand%20charge-transfer%20%28MLCT%29%20states%20into%20metal-centered%20%28MC%29%20states%2C%20leading%20to%20inefficient%20injection%20into%20TiO2.%20In%20this%20review%2C%20we%20present%20our%20latest%20developments%20in%20the%20field%20using%20Fe%28II%29-based%20photosensitizers%20bearing%20N-heterocyclic%20carbene%20%28NHC%29%20ligands%2C%20and%20their%20use%20in%20DSSCs.%20Special%20attention%20is%20paid%20to%20synthesis%2C%20photophysical%2C%20electrochemical%2C%20and%20computational%20characterization.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22%22%2C%22DOI%22%3A%2210.3390%5C%2Finorganics6020063%22%2C%22ISSN%22%3A%222304-6740%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.3390%5C%2Finorganics6020063%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222019-01-15T16%3A31%3A52Z%22%7D%7D%2C%7B%22key%22%3A%22CXER4PMZ%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Dufour%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Dufour%2C%20M.%20Valdes%2C%20R.%20Lazauskas%2C%20P.-A.%20Hervieux%2C%20Antihydrogen%20formation%20via%20antiproton%20scattering%20on%20positronium%20between%20the%20e%28-%29%20%2B%20%28H%29over-bar%20%28n%3D2%29%20and%20e%28-%29%20%2B%20%28H%29over-bar%20%28n%3D3%29%20thresholds%2C%20in%3A%20Hyperfine%20Interactions%2C%202018%3A%20p.%2041.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1007%5C%2Fs10751-018-1515-1%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1007%5C%2Fs10751-018-1515-1%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Antihydrogen%20formation%20via%20antiproton%20scattering%20on%20positronium%20between%20the%20e%28-%29%20%2B%20%28H%29over-bar%20%28n%3D2%29%20and%20e%28-%29%20%2B%20%28H%29over-bar%20%28n%3D3%29%20thresholds%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marianne%22%2C%22lastName%22%3A%22Dufour%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mateo%22%2C%22lastName%22%3A%22Valdes%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rimantas%22%2C%22lastName%22%3A%22Lazauskas%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Paul-Antoine%22%2C%22lastName%22%3A%22Hervieux%22%7D%5D%2C%22abstractNote%22%3A%22The%20charge%20exchange%20reaction%20%28p%29%20over%20bar%20%2B%20Ps%20-%3E%20e%28-%29%20%2B%20%28H%29%20over%20bar%2C%20of%20interest%20for%20the%20future%20experiments%20%28GBAR%2C%20AEGIS%2C%20ATRAP%2C%20...%29%20aiming%20to%20produce%20antihydrogen%20atoms%2C%20is%20investigated%20in%20the%20energy%20range%20between%20the%20e%28-%29%20%2B%20%28H%29%20over%20bar%20%28n%20%3D%202%29%20and%20e%28-%29%20%2B%20%28H%29%20over%20bar%20%28n%20%3D%203%29%20thresholds.%20An%20ab-initio%20method%20based%20on%20the%20solution%20of%20the%20Faddeev-Merkuriev%20equations%20is%20used.%20Special%20focus%20is%20put%20on%20the%20impact%20of%20the%20Feshbach%20resonances%20and%20the%20Gailitis-Damburg%20oscillations%2C%20appearing%20in%20the%20vicinity%20of%20the%20%28p%29%20over%20bar%20%2B%20Ps%28n%20%3D%202%29%20threshold%2C%20on%20the%20%28H%29%20over%20bar%20production%20cross%20section.%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%22Hyperfine%20Interactions%22%2C%22conferenceName%22%3A%2213th%20International%20Conference%20on%20Low%20Energy%20Antiproton%20Physics%20%28LEAP%29%2C%20Paris%2C%20France%2C%2012-16%20mars%202018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1007%5C%2Fs10751-018-1515-1%22%2C%22ISBN%22%3A%22%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1007%5C%2Fs10751-018-1515-1%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222019-01-15T10%3A11%3A56Z%22%7D%7D%2C%7B%22key%22%3A%22VUP3DWEF%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Durand%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3ER.J.%20Durand%2C%20S.%20Gauthier%2C%20S.%20Achelle%2C%20T.%20Groizard%2C%20S.%20Kahlal%2C%20J.-Y.%20Saillard%2C%20A.%20Barsella%2C%20N.%20Le%20Poul%2C%20F.R.%20Le%20Guen%2C%20Push-pull%20D-pi-Ru-pi-A%20chromophores%3A%20synthesis%20and%20electrochemical%2C%20photophysical%20and%20second-order%20nonlinear%20optical%20properties%2C%20Dalton%20Transactions%2047%20%282018%29%203965%26%23x2013%3B3975.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8dt00093j%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8dt00093j%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Push-pull%20D-pi-Ru-pi-A%20chromophores%3A%20synthesis%20and%20electrochemical%2C%20photophysical%20and%20second-order%20nonlinear%20optical%20properties%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Raphael%20J.%22%2C%22lastName%22%3A%22Durand%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sebastien%22%2C%22lastName%22%3A%22Gauthier%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sylvain%22%2C%22lastName%22%3A%22Achelle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Thomas%22%2C%22lastName%22%3A%22Groizard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Samia%22%2C%22lastName%22%3A%22Kahlal%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jean-Yves%22%2C%22lastName%22%3A%22Saillard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Alberto%22%2C%22lastName%22%3A%22Barsella%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nicolas%22%2C%22lastName%22%3A%22Le%20Poul%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Francoise%20Robin%22%2C%22lastName%22%3A%22Le%20Guen%22%7D%5D%2C%22abstractNote%22%3A%22The%20present%20work%20describes%20the%20one-pot%20synthesis%20and%20electrochemical%2C%20photophysical%20and%20second-order%20nonlinear%20optical%20%28NLO%29%20properties%20of%20a%20series%20of%20dipolar%20-delocalized%20Ru%28ii%29%20dialkynyl%20complexes.%20The%20eight%20new%20asymmetrical%20D-pi-Ru-pi-A%20push-pull%20chromophores%20incorporate%20pyranylidene%20ligands%20as%20pro-aromatic%20donor%20groups%20%28D%29%20and%20formaldehyde%2C%20indane-1%2C3-dione%2C%20pyrimidine%20or%20pyrimidinium%20as%20electron-attracting%20groups%20%28A%29%20separated%20by%20ruthenium%20bis-acetylide%20fragments%20and%20pi-conjugated%20linkers.%20The%20second-order%20nonlinear%20optical%20%28NLO%29%20properties%20of%20all%20eight%20complexes%20were%20determined%20by%20the%20Electric-Field-Induced%20Second%20Harmonic%20generation%20%28EFISH%29%20technique%20%28operating%20at%201907%20nm%29%2C%20and%20were%20compared%20to%20those%20of%20their%20purely%20organic%20analogs.%20All%20investigated%20compounds%20%28organic%20and%20organometallic%29%20exhibited%20positive%20mu%20beta%20values%2C%20which%20dramatically%20increased%20for%20the%20complexes%20due%20to%20the%20presence%20of%20ruthenium%20in%20the%20pi-conjugated%20core.%20The%20second-order%20NLO%20response%20could%20also%20be%20easily%20modulated%20by%20changing%20the%20nature%20of%20alkynyl%20substituents.%20The%20most%20promising%20ruthenium%20complexes%207%20and%208%20of%20the%20series%20with%20the%20pyrimidinium%20fragment%20displayed%20mu%20beta%20values%20of%2014000%20x%2010%28-48%29%20esu.%20The%20effect%20of%20structural%20modifications%20on%20the%20redox%20and%20spectroscopic%20properties%20of%20the%20complexes%20was%20also%20studied.%20The%20intramolecular%20charge%20transfer%20%28ICT%29%20occurring%20through%20the%20ruthenium%20center%20of%20the%20push-pull%20sigma-dialkynyl%20complexes%20was%20investigated%20by%20combining%20experimental%20and%20theoretical%20data.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc8dt00093j%22%2C%22ISSN%22%3A%221477-9226%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc8dt00093j%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22WWGPR7DV%22%5D%2C%22dateModified%22%3A%222018-06-05T09%3A00%3A53Z%22%7D%7D%2C%7B%22key%22%3A%225ABJ6PA4%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Durand%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3ER.J.%20Durand%2C%20S.%20Achelle%2C%20S.%20Gauthier%2C%20N.%20Cabon%2C%20M.%20Ducamp%2C%20S.%20Kahlal%2C%20J.-Y.%20Saillard%2C%20A.%20Barsella%2C%20F.%20Robin-Le%20Guen%2C%20Incorporation%20of%20a%20ferrocene%20unit%20in%20the%20pi-conjugated%20structure%20of%20donor-linker-acceptor%20%28D-pi-A%29%20chromophores%20for%20nonlinear%20optics%20%28NLO%29%2C%20Dyes%20and%20Pigments%20155%20%282018%29%2068%26%23x2013%3B74.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1016%5C%2Fj.dyepig.2018.03.029%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1016%5C%2Fj.dyepig.2018.03.029%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Incorporation%20of%20a%20ferrocene%20unit%20in%20the%20pi-conjugated%20structure%20of%20donor-linker-acceptor%20%28D-pi-A%29%20chromophores%20for%20nonlinear%20optics%20%28NLO%29%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Raphael%20J.%22%2C%22lastName%22%3A%22Durand%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sylvain%22%2C%22lastName%22%3A%22Achelle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sebastien%22%2C%22lastName%22%3A%22Gauthier%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nolwenn%22%2C%22lastName%22%3A%22Cabon%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Maxime%22%2C%22lastName%22%3A%22Ducamp%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Samia%22%2C%22lastName%22%3A%22Kahlal%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jean-Yves%22%2C%22lastName%22%3A%22Saillard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Alberto%22%2C%22lastName%22%3A%22Barsella%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Francoise%22%2C%22lastName%22%3A%22Robin-Le%20Guen%22%7D%5D%2C%22abstractNote%22%3A%22In%20this%20paper%20we%20describe%20the%20synthesis%2C%20the%20electrochemical%20behaviour%20as%20well%20as%20the%20linear%20and%20nonlinear%20optical%20%28NLO%29%20properties%20of%20two%20push-pull%20derivatives%20bearing%20pyranylidene%20electron%20donating%20fragment%2C%20pyrimidine%5C%2Fmethyl%20pyrimidinium%20electron%20withdrawing%20moiety%20and%20a%20ferrocene%20part%20in%20the%20pi-conjugated%20bridge.%20The%20properties%20of%20these%20two%20compounds%20were%20compared%20to%20their%20analogues%20without%20ferrocene%20or%20pyranylidene%20fragments.%20Experimental%20results%20were%20completed%20with%20DFT%20calculations%20to%20gain%20further%20insight%20into%20the%20intramolecular%20charge%20transfer%20%28ICT%29.%20All%20the%20results%20indicate%20a%20significant%20charge%20transfer%20through%20the%20ferrocene%20unit.%20The%20ICT%20is%20however%20more%20limited%20than%20in%20all%20organic%20analogues.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1016%5C%2Fj.dyepig.2018.03.029%22%2C%22ISSN%22%3A%220143-7208%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1016%5C%2Fj.dyepig.2018.03.029%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22WWGPR7DV%22%5D%2C%22dateModified%22%3A%222018-11-07T13%3A26%3A50Z%22%7D%7D%2C%7B%22key%22%3A%22F4C5HCPE%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Evrard%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EQ.%20Evrard%2C%20C.%20Leuvrey%2C%20P.%20Farger%2C%20E.%20Delahaye%2C%20P.%20Rabu%2C%20G.%20Taupier%2C%20K.D.%20Dorkenoo%2C%20J.-M.%20Rueff%2C%20N.%20Barrier%2C%20O.%20Perez%2C%20G.%20Rogez%2C%20Noncentrosymmetric%20Cu%28II%29%20Layered%20Hydroxide%3A%20Synthesis%2C%20Crystal%20Structure%2C%20Nonlinear%20Optical%2C%20and%20Magnetic%20Properties%20of%20Cu-2%28OH%29%283%29%28C12H25SO4%29%2C%20Crystal%20Growth%20%26amp%3B%20Design%2018%20%282018%29%201809%26%23x2013%3B1817.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.cgd.7601692%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.cgd.7601692%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Noncentrosymmetric%20Cu%28II%29%20Layered%20Hydroxide%3A%20Synthesis%2C%20Crystal%20Structure%2C%20Nonlinear%20Optical%2C%20and%20Magnetic%20Properties%20of%20Cu-2%28OH%29%283%29%28C12H25SO4%29%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Quentin%22%2C%22lastName%22%3A%22Evrard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22C%5Cu00e9dric%22%2C%22lastName%22%3A%22Leuvrey%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pierre%22%2C%22lastName%22%3A%22Farger%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Emilie%22%2C%22lastName%22%3A%22Delahaye%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pierre%22%2C%22lastName%22%3A%22Rabu%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gregory%22%2C%22lastName%22%3A%22Taupier%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Kokou%20Dodzi%22%2C%22lastName%22%3A%22Dorkenoo%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jean-Michel%22%2C%22lastName%22%3A%22Rueff%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nicolas%22%2C%22lastName%22%3A%22Barrier%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Olivier%22%2C%22lastName%22%3A%22Perez%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Guillaume%22%2C%22lastName%22%3A%22Rogez%22%7D%5D%2C%22abstractNote%22%3A%22Single%20crystals%20of%20the%20layered%20copper%20hydroxide%20dodecylsulfate%20Cu-2%28OH%29%283%29%28C12H25SO4%29%20have%20been%20obtained%20for%20the%20first%20time%2C%20by%20controlled%20hydrolysis%20of%20an%20aqueous%20copper%20acetate%20solution.%20Interestingly%2C%20this%20compound%20crystallizes%20in%20a%20noncentrosymmetric%20space%20group%20%28P2%281%29%2C%20a%20%3D%205.591%2810%29%20angstrom%2C%20b%20%3D%206.108%2811%29%20angstrom%2C%20c%3D%2026.96%285%29%20angstrom%2C%20a%20%3D%20gamma%20%3D%2090%2C%20beta%20%3D%2092.76%29%2C%20which%20is%20further%20confirmed%20by%20nonlinear%20optical%20measurements.%20Within%20the%20course%20of%20the%20synthesis%2C%20a%20probable%20intermediate%20between%20Cu%28OAc%29%282%29%3A%20H2O%20and%20the%20layered%20Cu-2%28OH%29%283%29%28C12H25SO4%29%20was%20isolated%20and%20characterized.%20X-ray%20structure%20analysis%20showed%20that%20this%20intermediate%20presents%20a%20ribbon-like%20structure%20of%20formula%20Cu-3%28C12H25SO4%29%282%29%28CH3COO%29%282%29%28OH%29%282%29%28H2O%29%282%29.%20The%20magnetic%20properties%20of%20the%20layered%20Cu-2%28OH%29%283%29%28C12H25SO4%29%20have%20been%20analyzed%20in%20the%20high-temperature%20region%20%28T%20%3E%2020%20K%29%20by%20considering%20a%20high-temperature%20series%20expansion%20for%20a%20S%20%3D%201%5C%2F2%20Heisenberg%20two-dimensional%20triangular%20lattice.%20At%20lower%20temperature%2C%20the%20compound%20shows%20a%20three-dimensional%20antiferromagnetic%20ordering%20%28T-N%20%3D%2010.8%20K%29.%20The%20ribbon-like%20compound%20Cu-3%28C12H25SO4%29%282%29%28CH3COO%29%282%29%28OH%29%282%29%28H2O%29%282%29%20presents%20an%20overall%20antiferromagnetic%20behavior%2C%20resulting%20from%20a%20combination%20of%20ferro-%20and%20antiferromagnetic%20interactions%20between%20nearest%20neighbors%20within%20the%20chains.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1021%5C%2Facs.cgd.7601692%22%2C%22ISSN%22%3A%221528-7483%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1021%5C%2Facs.cgd.7601692%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22M244N6AF%22%2C%22WWGPR7DV%22%2C%226IWM732K%22%2C%22CF4ZI7HM%22%5D%2C%22dateModified%22%3A%222018-06-05T09%3A02%3A09Z%22%7D%7D%2C%7B%22key%22%3A%22TNKTHSXW%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Farger%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EP.%20Farger%2C%20C.%20Leuvrey%2C%20M.%20Gallart%2C%20P.%20Gilliot%2C%20G.%20Rogez%2C%20J.%20Rocha%2C%20D.%20Ananias%2C%20P.%20Rabu%2C%20E.%20Delahaye%2C%20Magnetic%20and%20luminescent%20coordination%20networks%20based%20on%20imidazolium%20salts%20and%20lanthanides%20for%20sensitive%20ratiometric%20thermometry%2C%20Beilstein%20Journal%20of%20Nanotechnology%209%20%282018%29%202775%26%23x2013%3B2787.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.3762%5C%2Fbjnano.9.259%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.3762%5C%2Fbjnano.9.259%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Magnetic%20and%20luminescent%20coordination%20networks%20based%20on%20imidazolium%20salts%20and%20lanthanides%20for%20sensitive%20ratiometric%20thermometry%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pierre%22%2C%22lastName%22%3A%22Farger%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22C%5Cu00e9dric%22%2C%22lastName%22%3A%22Leuvrey%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mathieu%22%2C%22lastName%22%3A%22Gallart%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pierre%22%2C%22lastName%22%3A%22Gilliot%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Guillaume%22%2C%22lastName%22%3A%22Rogez%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Joao%22%2C%22lastName%22%3A%22Rocha%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Duarte%22%2C%22lastName%22%3A%22Ananias%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pierre%22%2C%22lastName%22%3A%22Rabu%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Emilie%22%2C%22lastName%22%3A%22Delahaye%22%7D%5D%2C%22abstractNote%22%3A%22The%20synthesis%20and%20characterization%20of%20six%20new%20lanthanide%20networks%20%5BLn%28L%29%28ox%29%28H2O%29%5D%20with%20Ln%20%3D%20Eu3%2B%2C%20Gd3%2B%2C%20Tb3%2B%20%2C%20Dy3%2B%20%2C%20Ho3%2B%20and%20Yb3%2B%20is%20reported.%20They%20were%20synthesized%20by%20solvo-ionothermal%20reaction%20of%20lanthanide%20nitrate%20Ln%28NO3%29%283%29center%20dot%20xH%282%29O%20with%20the%201%2C3-bis%28carboxymethyl%29imidazolium%20%5BHE%5D%20ligand%20and%20oxalic%20acid%20%28H%282%29ox%29%20in%20a%20water%5C%2Fethanol%20solution.%20The%20crystal%20structure%20of%20these%20compounds%20has%20been%20solved%20on%20single%20crystals%20and%20the%20magnetic%20and%20luminescent%20properties%20have%20been%20investigated%20relying%20on%20intrinsic%20properties%20of%20the%20lanthanide%20ions.%20The%20synthetic%20strategy%20has%20been%20extended%20to%20mixed%20lanthanide%20networks%20leading%20to%20four%20isostructural%20networks%20of%20formula%20%5BTb1-xEux%28L%29%28ox%29%28H2O%29%5D%20with%20x%20%3D%200.01%2C%200.03%2C%200.05%20and%200.10.%20These%20materials%20were%20assessed%20as%20luminescent%20ratiometric%20thermometers%20based%20on%20the%20emission%20intensities%20of%20ligand%2C%20Tb3%2B%20and%20Eu3%2B%20.%20The%20best%20sensitivities%20were%20obtained%20using%20the%20ratio%20between%20the%20emission%20intensities%20of%20Eu3%2B%20%28D-5%280%29%20-%3E%20F-7%282%29%20transition%29%20and%20of%20the%20ligand%20as%20the%20thermometric%20parameter.%20%5BTb0.97Eu0.03%20%28L%29%28ox%29%28H2O%29%5D%20was%20found%20to%20be%20one%20of%20the%20best%20thermometers%20among%20lanthanide-bearing%20coordination%20polymers%20and%20metal-organic%20frameworks%2C%20operative%20in%20the%20physiological%20range%20with%20a%20maximum%20sensitivity%20of%201.38%25.K-1%20at%20340%20K.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.3762%5C%2Fbjnano.9.259%22%2C%22ISSN%22%3A%222190-4286%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.3762%5C%2Fbjnano.9.259%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22HVHG5Z72%22%2C%22M244N6AF%22%2C%226IWM732K%22%2C%22CF4ZI7HM%22%5D%2C%22dateModified%22%3A%222019-01-15T10%3A22%3A11Z%22%7D%7D%2C%7B%22key%22%3A%22QT5VUSB4%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Fiegel%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EV.%20Fiegel%2C%20S.%20Harlepp%2C%20S.%20B%26%23xE9%3Bgin-Colin%2C%20D.%20B%26%23xE9%3Bgin%2C%20D.%20Mertz%2C%20Design%20of%20Protein-Coated%20Carbon%20Nanotubes%20Loaded%20with%20Hydrophobic%20Drugs%20through%20Sacrificial%20Templating%20of%20Mesoporous%20Silica%20Shells%2C%20Chemistry-a%20European%20Journal%2024%20%282018%29%204662%26%23x2013%3B4670.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1002%5C%2Fchem.201705845%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1002%5C%2Fchem.201705845%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Design%20of%20Protein-Coated%20Carbon%20Nanotubes%20Loaded%20with%20Hydrophobic%20Drugs%20through%20Sacrificial%20Templating%20of%20Mesoporous%20Silica%20Shells%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vincent%22%2C%22lastName%22%3A%22Fiegel%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sebastien%22%2C%22lastName%22%3A%22Harlepp%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sylvie%22%2C%22lastName%22%3A%22B%5Cu00e9gin-Colin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Dominique%22%2C%22lastName%22%3A%22B%5Cu00e9gin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Damien%22%2C%22lastName%22%3A%22Mertz%22%7D%5D%2C%22abstractNote%22%3A%22One%20key%20challenge%20in%20the%20fields%20of%20nanomedicine%20and%20tissue%20engineering%20is%20the%20design%20of%20theranostic%20nanoplatforms%20able%20to%20monitor%20their%20therapeutic%20effect%20by%20imaging.%20Among%20current%20developed%20nano-objects%2C%20carbon%20nanotubes%20%28CNTs%29%20were%20found%20suitable%20to%20combine%20imaging%2C%20photothermal%20therapy%2C%20and%20to%20be%20loaded%20with%20hydrophobic%20drugs.%20However%2C%20a%20main%20problem%20is%20their%20resulting%20low%20hydrophilicity.%20To%20face%20this%20problem%2C%20an%20innovative%20method%20is%20developed%20here%2C%20which%20consists%20in%20loading%20the%20surface%20of%20carbon%20nanotubes%20%28CNTs%29%20with%20drugs%20followed%20by%20a%20protein%20coating%20around%20them.%20The%20originality%20of%20this%20method%20relies%20on%20first%20covering%20CNTs%20with%20a%20sacrificial%20template%20mesoporous%20silica%20%28MS%29%20shell%20grafted%20with%20isobutyramide%20%28IBAM%29%20binders%20on%20which%20a%20protein%20nanofilm%20is%20strongly%20adhered%20through%20IBAM-mediated%20physical%20cross-linking.%20This%20concept%20is%20first%20demonstrated%20without%20drugs%2C%20and%20is%20further%20improved%20with%20the%20suitable%20loading%20of%20hydrophobic%20drugs%2C%20curcumin%20%28CUR%29%20and%20camptothecin%20%28CPT%29%2C%20which%20are%20retained%20between%20the%20CNTs%20and%20human%20serum%20albumin%20%28HSA%29%20layer.%20Such%20novel%20nanocomposites%20with%20favorable%20photothermal%20properties%20are%20very%20promising%20for%20theranostic%20systems%2C%20drug%20delivery%2C%20and%20phototherapy%20applications.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1002%5C%2Fchem.201705845%22%2C%22ISSN%22%3A%220947-6539%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1002%5C%2Fchem.201705845%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%2C%22CF4ZI7HM%22%2C%22UBUT97QT%22%5D%2C%22dateModified%22%3A%222022-02-10T13%3A49%3A44Z%22%7D%7D%2C%7B%22key%22%3A%22K2F83424%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Follain%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EG.%20Follain%2C%20N.%20Osmani%2C%20A.S.%20Azevedo%2C%20G.%20Allio%2C%20L.%20Mercier%2C%20M.A.%20Karreman%2C%20G.%20Solecki%2C%20M.J.G.%20Leon%2C%20O.%20Lefebvre%2C%20N.%20Fekonja%2C%20C.%20Hille%2C%20V.%20Chabannes%2C%20G.%20Dolle%2C%20T.%20Metivet%2C%20F.D.%20Hovsepian%2C%20C.%20Prudhomme%2C%20A.%20Pichot%2C%20N.%20Paul%2C%20R.%20Carapito%2C%20S.%20Bahram%2C%20B.%20Ruthensteiner%2C%20A.%20Kemmling%2C%20S.%20Siemonsen%2C%20T.%20Schneider%2C%20J.%20Fiehler%2C%20M.%20Glatzel%2C%20F.%20Winkler%2C%20Y.%20Schwab%2C%20K.%20Pantel%2C%20S.%20Harlepp%2C%20J.G.%20Goetz%2C%20Hemodynamic%20Forces%20Tune%20the%20Arrest%2C%20Adhesion%2C%20and%20Extravasation%20of%20Circulating%20Tumor%20Cells%2C%20Developmental%20Cell%2045%20%282018%29%2033%2B.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1016%5C%2Fj.devcel.2018.02.015%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1016%5C%2Fj.devcel.2018.02.015%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Hemodynamic%20Forces%20Tune%20the%20Arrest%2C%20Adhesion%2C%20and%20Extravasation%20of%20Circulating%20Tumor%20Cells%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gautier%22%2C%22lastName%22%3A%22Follain%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nael%22%2C%22lastName%22%3A%22Osmani%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ana%20Sofia%22%2C%22lastName%22%3A%22Azevedo%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Guillaume%22%2C%22lastName%22%3A%22Allio%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Luc%22%2C%22lastName%22%3A%22Mercier%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Matthia%20A.%22%2C%22lastName%22%3A%22Karreman%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gergely%22%2C%22lastName%22%3A%22Solecki%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Maria%20Jesus%20Garcia%22%2C%22lastName%22%3A%22Leon%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Olivier%22%2C%22lastName%22%3A%22Lefebvre%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nina%22%2C%22lastName%22%3A%22Fekonja%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Claudia%22%2C%22lastName%22%3A%22Hille%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vincent%22%2C%22lastName%22%3A%22Chabannes%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Guillaume%22%2C%22lastName%22%3A%22Dolle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Thibaut%22%2C%22lastName%22%3A%22Metivet%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Francois%20Der%22%2C%22lastName%22%3A%22Hovsepian%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Christophe%22%2C%22lastName%22%3A%22Prudhomme%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Angelique%22%2C%22lastName%22%3A%22Pichot%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nicodeme%22%2C%22lastName%22%3A%22Paul%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Raphael%22%2C%22lastName%22%3A%22Carapito%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Siamak%22%2C%22lastName%22%3A%22Bahram%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bernhard%22%2C%22lastName%22%3A%22Ruthensteiner%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Andre%22%2C%22lastName%22%3A%22Kemmling%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Susanne%22%2C%22lastName%22%3A%22Siemonsen%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Tanja%22%2C%22lastName%22%3A%22Schneider%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jens%22%2C%22lastName%22%3A%22Fiehler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Markus%22%2C%22lastName%22%3A%22Glatzel%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Frank%22%2C%22lastName%22%3A%22Winkler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Yannick%22%2C%22lastName%22%3A%22Schwab%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Klaus%22%2C%22lastName%22%3A%22Pantel%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sebastien%22%2C%22lastName%22%3A%22Harlepp%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jacky%20G.%22%2C%22lastName%22%3A%22Goetz%22%7D%5D%2C%22abstractNote%22%3A%22Metastatic%20seeding%20is%20driven%20by%20cell-intrinsic%20and%20environmental%20cues%2C%20yet%20the%20contribution%20of%20biomechanics%20is%20poorly%20known.%20We%20aim%20to%20elucidate%20the%20impact%20of%20blood%20flow%20on%20the%20arrest%20and%20the%20extravasation%20of%20circulating%20tumor%20cells%20%28CTCs%29%20in%20vivo.%20Using%20the%20zebrafish%20embryo%2C%20we%20show%20that%20arrest%20of%20CTCs%20occurs%20in%20vessels%20with%20favorable%20flow%20profiles%20where%20flow%20forces%20control%20the%20adhesion%20efficacy%20of%20CTCs%20to%20the%20endothelium.%20We%20biophysically%20identified%20the%20threshold%20values%20of%20flow%20and%20adhesion%20forces%20allowing%20successful%20arrest%20of%20CTCs.%20In%20addition%2C%20flow%20forces%20fine-tune%20tumor%20cell%20extravasation%20by%20impairing%20the%20remodeling%20properties%20of%20the%20endothelium.%20Importantly%2C%20we%20also%20observe%20endothelial%20remodeling%20at%20arrest%20sites%20of%20CTCs%20in%20mouse%20brain%20capillaries.%20Finally%2C%20we%20observed%20that%20human%20supratentorial%20brain%20metastases%20preferably%20develop%20in%20areas%20with%20low%20perfusion.%20These%20results%20demonstrate%20that%20hemodynamic%20profiles%20at%20metastatic%20sites%20regulate%20key%20steps%20of%20extravasation%20preceding%20metastatic%20outgrowth.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1016%5C%2Fj.devcel.2018.02.015%22%2C%22ISSN%22%3A%221534-5807%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1016%5C%2Fj.devcel.2018.02.015%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222018-06-05T09%3A04%3A17Z%22%7D%7D%2C%7B%22key%22%3A%22MPWM3SEX%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Follain%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A0%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EG.%20Follain%2C%20N.%20Osmani%2C%20C.%20Fuchs%2C%20G.%20Allio%2C%20S.%20Harlepp%2C%20J.%20Goetz%2C%20Using%20the%20Zebrafish%20Embryo%20to%20Dissect%20the%20Early%20Steps%20of%20the%20Metastasis%20Cascade%2C%20in%3A%20Methods%20in%20Molecular%20Biology%20%28Clifton%2C%20N.J.%29%2C%202018%3A%20pp.%20195%26%23x2013%3B211.%20%3Ca%20class%3D%27zp-ItemURL%27%20href%3D%27http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1007%5C%2F978-1-4939-7701-7_15%27%3Ehttp%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1007%5C%2F978-1-4939-7701-7_15%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22bookSection%22%2C%22title%22%3A%22Using%20the%20Zebrafish%20Embryo%20to%20Dissect%20the%20Early%20Steps%20of%20the%20Metastasis%20Cascade%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gautier%22%2C%22lastName%22%3A%22Follain%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Na%5Cu00ebl%22%2C%22lastName%22%3A%22Osmani%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22C%5Cu00e9dric%22%2C%22lastName%22%3A%22Fuchs%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Guillaume%22%2C%22lastName%22%3A%22Allio%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sebastien%22%2C%22lastName%22%3A%22Harlepp%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jacky%22%2C%22lastName%22%3A%22Goetz%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22bookTitle%22%3A%22Methods%20in%20molecular%20biology%20%28Clifton%2C%20N.J.%29%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22%22%2C%22ISBN%22%3A%22978-1-4939-7700-0%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1007%5C%2F978-1-4939-7701-7_15%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222022-05-24T14%3A42%3A46Z%22%7D%7D%2C%7B%22key%22%3A%22K3GAXZ9N%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Frances-Monerris%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EA.%20Frances-Monerris%2C%20K.%20Magra%2C%20M.%20Darari%2C%20C.%20Cebrian%2C%20M.%20Beley%2C%20E.%20Domenichini%2C%20S.%20Haacke%2C%20M.%20Pastore%2C%20X.%20Assfeld%2C%20P.C.%20Gros%2C%20A.%20Monari%2C%20Synthesis%20and%20Computational%20Study%20of%20a%20Pyridylcarbene%20Fe%28II%29%20Complex%3A%20Unexpected%20Effects%20of%20fac%5C%2Fmer%20Isomerism%20in%20Metal-to-Ligand%20Triplet%20Potential%20Energy%20Surfaces%2C%20Inorganic%20Chemistry%2057%20%282018%29%2010431%26%23x2013%3B10441.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.inorgchem.8b01695%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.inorgchem.8b01695%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Synthesis%20and%20Computational%20Study%20of%20a%20Pyridylcarbene%20Fe%28II%29%20Complex%3A%20Unexpected%20Effects%20of%20fac%5C%2Fmer%20Isomerism%20in%20Metal-to-Ligand%20Triplet%20Potential%20Energy%20Surfaces%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Antonio%22%2C%22lastName%22%3A%22Frances-Monerris%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Kevin%22%2C%22lastName%22%3A%22Magra%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mohamed%22%2C%22lastName%22%3A%22Darari%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Cristina%22%2C%22lastName%22%3A%22Cebrian%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marc%22%2C%22lastName%22%3A%22Beley%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Edoardo%22%2C%22lastName%22%3A%22Domenichini%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mariachiara%22%2C%22lastName%22%3A%22Pastore%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Xavier%22%2C%22lastName%22%3A%22Assfeld%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Philippe%20C.%22%2C%22lastName%22%3A%22Gros%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Antonio%22%2C%22lastName%22%3A%22Monari%22%7D%5D%2C%22abstractNote%22%3A%22The%20synthesis%20and%20the%20steady-state%20absorption%20spectrum%20of%20a%20new%20pyridine-imidazolylidene%20Fe%28II%29%20complex%20%28Fe-NHC%29%20are%20presented.%20A%20detailed%20mechanism%20of%20the%20triplet%20metal-to-ligand%20charge-transfer%20states%20decay%20is%20provided%20on%20the%20basis%20of%20minimum%20energy%20path%20%28MEP%29%20calculations%20used%20to%20connect%20the%20lowest-lying%20singlet%2C%20triplet%2C%20and%20quintet%20state%20minima.%20The%20competition%20between%20the%20different%20decay%20pathways%20involved%20in%20the%20photoresponse%20is%20assessed%20by%20analyzing%20the%20shapes%20of%20the%20obtained%20potential%20energy%20surfaces.%20A%20qualitative%20difference%20between%20facial%20%28fac%29%20and%20meridional%20%28mer%29%20isomers%27%20potential%20energy%20surface%20%28PES%29%20topologies%20is%20evidenced%20for%20the%20first%20time%20in%20iron-based%20complexes.%20Indeed%2C%20the%20mer%20complex%20shows%20a%20steeper%20triplet%20path%20toward%20the%20corresponding%20%28MC%29-M-3%20minimum%2C%20which%20lies%20at%20a%20lower%20energy%20as%20compared%20to%20the%20fac%20isomer%2C%20thus%20pointing%20to%20a%20faster%20triplet%20decay%20of%20the%20former.%20Furthermore%2C%20while%20a%20major%20role%20of%20the%20metal-centered%20quintet%20state%20population%20from%20the%20triplet%20%28MC%29-M-3%20region%20is%20excluded%2C%20we%20identify%20the%20enlargement%20of%20iron-nitrogen%20bonds%20as%20the%20main%20normal%20modes%20driving%20the%20excited-state%20decay.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1021%5C%2Facs.inorgchem.8b01695%22%2C%22ISSN%22%3A%220020-1669%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1021%5C%2Facs.inorgchem.8b01695%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222019-01-15T10%3A23%3A11Z%22%7D%7D%2C%7B%22key%22%3A%22MZ7WPWRH%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Gallart%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Gallart%2C%20T.%20Cottineau%2C%20B.%20H%26%23xF6%3Bnerlage%2C%20V.%20Keller%2C%20N.%20Keller%2C%20P.%20Gilliot%2C%20Temperature%20dependent%20photoluminescence%20of%20anatase%20and%20rutile%20TiO2%20single%20crystals%3A%20Polaron%20and%20self-trapped%20exciton%20formation%2C%20Journal%20of%20Applied%20Physics%20124%20%282018%29%20133104.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1063%5C%2F1.5043144%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1063%5C%2F1.5043144%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Temperature%20dependent%20photoluminescence%20of%20anatase%20and%20rutile%20TiO2%20single%20crystals%3A%20Polaron%20and%20self-trapped%20exciton%20formation%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mathieu%22%2C%22lastName%22%3A%22Gallart%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Thomas%22%2C%22lastName%22%3A%22Cottineau%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bernd%22%2C%22lastName%22%3A%22H%5Cu00f6nerlage%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Valerie%22%2C%22lastName%22%3A%22Keller%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nicolas%22%2C%22lastName%22%3A%22Keller%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pierre%22%2C%22lastName%22%3A%22Gilliot%22%7D%5D%2C%22abstractNote%22%3A%22We%20propose%20an%20analysis%20of%20the%20emission%20properties%20of%20anatase%20and%20rutile%20titanium%20dioxide%20%28TiO2%29%20that%20emphasizes%20the%20role%20of%20the%20strong%20electron-phonon%20interaction.%20We%20performed%20measurements%20of%20photoluminescence%20%28PL%29%20spectra%20of%20bulk%20monocrystals%20under%20continuous%20wave-laser%20excitation%20and%20of%20their%20temperature%20dependence.%20We%20show%20that%20in%20both%20anatase%20and%20rutile%2C%20weakly%20bound%20self-trapped%20excitons%20are%20actually%20made%20out%20from%20carrier%20polarons%20and%20give%20rise%20to%20a%20broad%20emission%20band%20in%20the%20visible%20spectral%20range.%20The%20thermal%20activation%20of%20carrier%20motion%20allows%20their%20hopping%20to%20distant%20sites%20that%20leads%20to%20the%20observed%20quenching%20of%20luminescence.%20In%20the%20specific%20case%20of%20rutile%20TiO2%20%2C%20the%20PL%20spectral%20shape%20and%20its%20intensity-quenching%20scenario%20reveal%20the%20presence%20of%20dark%20trap%20states.%20Moreover%2C%20an%20additional%20narrow%20line%20structure%20shows%20up%20at%20low%20temperatures.%20The%20latter%20is%20due%20to%20localized%20impurity%20states%20that%20can%20be%20attributed%20to%20oxygen%20vacancies%20and%20can%20be%20fitted%20with%20a%20large%20Huang-Rhys%20parameter%20S%20%3D%202.5%20within%20a%20Franck-Condon%20model.%20Both%20phases%20show%20thus%20a%20very%20strong%20interaction%20between%20the%20photogenerated%20carriers%20and%20the%20lattice.%20Published%20by%20AIP%20Publishing.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1063%5C%2F1.5043144%22%2C%22ISSN%22%3A%220021-8979%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1063%5C%2F1.5043144%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22HVHG5Z72%22%5D%2C%22dateModified%22%3A%222019-01-15T13%3A08%3A38Z%22%7D%7D%2C%7B%22key%22%3A%22Q7NAX8KV%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Garc%5Cu00eda-Iriepa%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EC.%20Garc%26%23xED%3Ba-Iriepa%2C%20P.%20Gosset%2C%20R.%20Berraud-Pache%2C%20M.%20Zemmouche%2C%20G.%20Taupier%2C%20K.D.%20Dorkenoo%2C%20P.%20Didier%2C%20J.%20L%26%23xE9%3Bonard%2C%20N.%20Ferr%26%23xE9%3B%2C%20I.%20Navizet%2C%20Simulation%20and%20Analysis%20of%20the%20Spectroscopic%20Properties%20of%20Oxyluciferin%20and%20Its%20Analogues%20in%20Water%2C%20Journal%20of%20Chemical%20Theory%20and%20Computation%2014%20%282018%29%202117%26%23x2013%3B2126.%20%3Ca%20class%3D%27zp-ItemURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jctc.7b01240%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jctc.7b01240%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Simulation%20and%20Analysis%20of%20the%20Spectroscopic%20Properties%20of%20Oxyluciferin%20and%20Its%20Analogues%20in%20Water%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Cristina%22%2C%22lastName%22%3A%22Garc%5Cu00eda-Iriepa%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pauline%22%2C%22lastName%22%3A%22Gosset%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Romain%22%2C%22lastName%22%3A%22Berraud-Pache%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Madjid%22%2C%22lastName%22%3A%22Zemmouche%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gre%5Cu0301gory%22%2C%22lastName%22%3A%22Taupier%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Kokou%20Dodzi%22%2C%22lastName%22%3A%22Dorkenoo%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pascal%22%2C%22lastName%22%3A%22Didier%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J%5Cu00e9r%5Cu00e9mie%22%2C%22lastName%22%3A%22L%5Cu00e9onard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nicolas%22%2C%22lastName%22%3A%22Ferr%5Cu00e9%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Isabelle%22%2C%22lastName%22%3A%22Navizet%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22%22%2C%22DOI%22%3A%2210.1021%5C%2Facs.jctc.7b01240%22%2C%22ISSN%22%3A%22%22%2C%22url%22%3A%22https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jctc.7b01240%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22WWGPR7DV%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222018-05-31T14%3A54%3A49Z%22%7D%7D%2C%7B%22key%22%3A%228J556R9Q%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Gauthier%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3ES.%20Gauthier%2C%20A.%20Porter%2C%20S.%20Achelle%2C%20T.%20Roisnel%2C%20V.%20Dorcet%2C%20A.%20Barsella%2C%20N.%20Le%20Poul%2C%20P.G.%20Level%2C%20D.%20Jacquemin%2C%20F.%20Robin-Le%20Guen%2C%20Mono-%20and%20Diplatinum%20Polyynediyl%20Complexes%20as%20Potential%20Push-Pull%20Chromophores%3A%20Synthesis%2C%20Characterization%2C%20TD-DFT%20Modeling%2C%20and%20Photophysical%20and%20NLO%20Properties%2C%20Organometallics%2037%20%282018%29%202232%26%23x2013%3B2244.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.organoment.8b00223%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.organoment.8b00223%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Mono-%20and%20Diplatinum%20Polyynediyl%20Complexes%20as%20Potential%20Push-Pull%20Chromophores%3A%20Synthesis%2C%20Characterization%2C%20TD-DFT%20Modeling%2C%20and%20Photophysical%20and%20NLO%20Properties%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sebastien%22%2C%22lastName%22%3A%22Gauthier%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ariel%22%2C%22lastName%22%3A%22Porter%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sylvain%22%2C%22lastName%22%3A%22Achelle%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Thierry%22%2C%22lastName%22%3A%22Roisnel%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vincent%22%2C%22lastName%22%3A%22Dorcet%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Alberto%22%2C%22lastName%22%3A%22Barsella%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nicolas%22%2C%22lastName%22%3A%22Le%20Poul%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Patricia%20Guevara%22%2C%22lastName%22%3A%22Level%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Denis%22%2C%22lastName%22%3A%22Jacquemin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Francoise%22%2C%22lastName%22%3A%22Robin-Le%20Guen%22%7D%5D%2C%22abstractNote%22%3A%22This%20paper%20presents%20the%20syntheses%20and%20photophysical%20and%20the%20electrochemical%20characterizations%20of%20four%20new%20mono-%20and%20diplatinum%20polyynediyl%20complex%20chromophores%20end-capped%20with%20diphenylpyranylidene%20and%20pentafluorophenyl%20moieties.%20The%20nonlinear%20optical%20properties%20%28NLO%29%20of%20these%20compounds%20are%20investigated%20using%20the%20electric-field-induced%20second%20harmonic%20generation%20%28EFISH%29%20technique%2C%20and%20their%20experimental%20optical%20properties%20are%20confirmed%20by%20time-dependent%20density%20functional%20theory%20%28TD-DFT%29%20with%20a%20range-separated%20hybrid.%20All%20complexes%20show%20positive%20mu%20beta%20values.%20While%20the%20inductive%20electron-withdrawing%20pentafluorophenyl%20ligand%2C%20the%20length%20of%20the%20polyyne%20linkers%2C%20and%20the%20number%20of%20platinum%20centers%20do%20not%20seem%20to%20significantly%20affect%20the%20NLO%20responses%20of%20these%20complexes%2C%20their%20structural%20configuration%20plays%20a%20significant%20role%2C%20as%20shown%20by%20the%20V-shaped%20complex%2010%20exhibiting%20the%20highest%20mu%20beta%20value%20of%20the%20series%20of%20complexes%2C%20twice%20as%20high%20as%20that%20of%20the%20linear%20complex%209.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1021%5C%2Facs.organoment.8b00223%22%2C%22ISSN%22%3A%220276-7333%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1021%5C%2Facs.organoment.8b00223%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22WWGPR7DV%22%5D%2C%22dateModified%22%3A%222018-11-07T14%3A10%3A42Z%22%7D%7D%2C%7B%22key%22%3A%223JW2JHSK%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Genevaz%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EN.%20Genevaz%2C%20P.%20Chavez%2C%20V.%20Untilova%2C%20A.%20Boeglin%2C%20C.%20Bailly%2C%20L.%20Karmazin%2C%20L.%20Biniek%2C%20Tuning%20crystallochromism%20in%20diketopyrrolopyrrole-co-thieno%5B3%2C2-b%5Dthiophene%20derivatives%20by%20the%20architecture%20of%20their%20alkyl%20side%20chains%2C%20Journal%20of%20Materials%20Chemistry%20C%206%20%282018%29%209140%26%23x2013%3B9151.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8tc02022a%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8tc02022a%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Tuning%20crystallochromism%20in%20diketopyrrolopyrrole-co-thieno%5B3%2C2-b%5Dthiophene%20derivatives%20by%20the%20architecture%20of%20their%20alkyl%20side%20chains%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nicolas%22%2C%22lastName%22%3A%22Genevaz%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Patricia%22%2C%22lastName%22%3A%22Chavez%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Viktoriia%22%2C%22lastName%22%3A%22Untilova%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Alex%22%2C%22lastName%22%3A%22Boeglin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Corinne%22%2C%22lastName%22%3A%22Bailly%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Lydia%22%2C%22lastName%22%3A%22Karmazin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Laure%22%2C%22lastName%22%3A%22Biniek%22%7D%5D%2C%22abstractNote%22%3A%22Two%20diketopyrrolopyrrole-co-thieno%5B3%2C2-b%5Dthiophene%20derivatives%20substituted%20with%20either%20branched%20ethylhexyl%20%28TTDPP-EH%29%20or%20linear%20hexyl%20side%20chains%20%28TTDPP-C6%29%20have%20been%20synthesized.%20The%20impact%20of%20the%20side%20chain%20architecture%20on%20the%20structure%20and%20optical%20properties%20has%20been%20evaluated.%20TTDPP%20molecules%20crystallize%20in%20triclinic%20unit%20cells%20observed%20in%20both%20single%20crystals%20and%20in%20thin%20films.%20The%20most%20striking%20difference%20between%20the%20two%20compounds%20is%20the%20packing%20of%20the%20molecules.%20For%20TTDPP-EH%2C%20pairs%20of%20molecules%20overlap%20only%20at%20their%20thienothiophene%20%28TT%29%20ring%20tips%20leading%20to%20a%20weak%20excitonic%20coupling%20of%20the%20J-type%20character.%20In%20contrast%2C%20TTDPP-C6%20molecules%20stack%20in%20a%201D%20columnar%20structure%20with%20extended%20molecular%20overlapping.%20A%20transverse%20displacement%20of%20the%20molecules%20along%20their%20molecular%20axis%20allows%20a%20partial%20overlap%20of%20electron-rich%20TT%20and%20electron-poor%20DPP%20units.%20This%20leads%20to%20a%20stronger%20excitonic%20coupling%20with%20apparent%20coexistence%20of%20H-%20and%20J-like%20absorption%20features.%20Interestingly%2C%20both%20single%20crystals%20and%20oriented%20thin%20films%20change%20color%20with%20light%20polarization.%20This%20sensitivity%20to%20light%20polarization%20is%20related%20to%20the%20presence%20of%20two%20different%20excitonic%20couplings%20within%20TTDPP-C6.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc8tc02022a%22%2C%22ISSN%22%3A%222050-7526%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc8tc02022a%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22PVWR7FJK%22%5D%2C%22dateModified%22%3A%222019-01-15T13%3A10%3A06Z%22%7D%7D%2C%7B%22key%22%3A%222PZC9VUW%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Gueye%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Gueye%2C%20M.%20Manathunga%2C%20D.%20Agathangelou%2C%20Y.%20Orozco%2C%20M.%20Paolino%2C%20S.%20Fusi%2C%20S.%20Haacke%2C%20M.%20Olivucci%2C%20J.%20L%26%23xE9%3Bonard%2C%20Engineering%20the%20vibrational%20coherence%20of%20vision%20into%20a%20synthetic%20molecular%20device%2C%20Nature%20Communications%209%20%282018%29%20313.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1038%5C%2Fs41467-017-02668-w%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1038%5C%2Fs41467-017-02668-w%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Engineering%20the%20vibrational%20coherence%20of%20vision%20into%20a%20synthetic%20molecular%20device%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Moussa%22%2C%22lastName%22%3A%22Gueye%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Madushanka%22%2C%22lastName%22%3A%22Manathunga%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Damianos%22%2C%22lastName%22%3A%22Agathangelou%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Yoelvis%22%2C%22lastName%22%3A%22Orozco%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marco%22%2C%22lastName%22%3A%22Paolino%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefania%22%2C%22lastName%22%3A%22Fusi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Massimo%22%2C%22lastName%22%3A%22Olivucci%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J%5Cu00e9r%5Cu00e9mie%22%2C%22lastName%22%3A%22L%5Cu00e9onard%22%7D%5D%2C%22abstractNote%22%3A%22The%20light-induced%20double-bond%20isomerization%20of%20the%20visual%20pigment%20rhodopsin%20operates%20a%20molecular-level%20optomechanical%20energy%20transduction%2C%20which%20triggers%20a%20crucial%20protein%20structure%20change.%20In%20fact%2C%20rhodopsin%20isomerization%20occurs%20according%20to%20a%20unique%2C%20ultrafast%20mechanism%20that%20preserves%20mode-specific%20vibrational%20coherence%20all%20the%20way%20from%20the%20reactant%20excited%20state%20to%20the%20primary%20photoproduct%20ground%20state.%20The%20engineering%20of%20such%20an%20energyfunnelling%20function%20in%20synthetic%20compounds%20would%20pave%20the%20way%20towards%20biomimetic%20molecular%20machines%20capable%20of%20achieving%20optimum%20light-to-mechanical%20energy%20conversion.%20Here%20we%20use%20resonance%20and%20off-resonance%20vibrational%20coherence%20spectroscopy%20to%20demonstrate%20that%20a%20rhodopsin-like%20isomerization%20operates%20in%20a%20biomimetic%20molecular%20switch%20in%20solution.%20Furthermore%2C%20by%20using%20quantum%20chemical%20simulations%2C%20we%20show%20why%20the%20observed%20coherent%20nuclear%20motion%20critically%20depends%20on%20minor%20chemical%20modifications%20capable%20to%20induce%20specific%20geometric%20and%20electronic%20effects.%20This%20finding%20provides%20a%20strategy%20for%20engineering%20vibrationally%20coherent%20motions%20in%20other%20synthetic%20systems.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1038%5C%2Fs41467-017-02668-w%22%2C%22ISSN%22%3A%222041-1723%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1038%5C%2Fs41467-017-02668-w%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222021-06-09T14%3A41%3A24Z%22%7D%7D%2C%7B%22key%22%3A%227P3IKJXV%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Honerlage%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A0%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EB.%20Honerlage%2C%20I.%20Pelant%2C%20B.%20Honerlage%2C%20I.%20Pelant%2C%20Symmetry%20and%20Symmetry-Breaking%20in%20Semiconductors%20Fine%20Structure%20of%20Exciton%20States%2C%202018.%20%3Ca%20class%3D%27zp-ItemURL%27%20href%3D%2710.1007%5C%2F978-3-319-94235-3%27%3E10.1007%5C%2F978-3-319-94235-3%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22book%22%2C%22title%22%3A%22Symmetry%20and%20Symmetry-Breaking%20in%20Semiconductors%20Fine%20Structure%20of%20Exciton%20States%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22B%22%2C%22lastName%22%3A%22Honerlage%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22I%22%2C%22lastName%22%3A%22Pelant%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22B%22%2C%22lastName%22%3A%22Honerlage%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22I%22%2C%22lastName%22%3A%22Pelant%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22ISBN%22%3A%22978-3-319-94234-6%22%2C%22url%22%3A%2210.1007%5C%2F978-3-319-94235-3%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22HVHG5Z72%22%5D%2C%22dateModified%22%3A%222022-03-29T13%3A18%3A24Z%22%7D%7D%2C%7B%22key%22%3A%227ZPCA6NM%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Hurst%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EJ.%20Hurst%2C%20P.-A.%20Hervieux%2C%20G.%20Manfredi%2C%20Spin%20current%20generation%20by%20ultrafast%20laser%20pulses%20in%20ferromagnetic%20nickel%20films%2C%20Physical%20Review%20B%2097%20%282018%29%20014424.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevB.97.014424%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevB.97.014424%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Spin%20current%20generation%20by%20ultrafast%20laser%20pulses%20in%20ferromagnetic%20nickel%20films%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jerome%22%2C%22lastName%22%3A%22Hurst%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Paul-Antoine%22%2C%22lastName%22%3A%22Hervieux%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Giovanni%22%2C%22lastName%22%3A%22Manfredi%22%7D%5D%2C%22abstractNote%22%3A%22A%20semiclassical%20phase-space%20model%20is%20used%20to%20study%20the%20ultrafast%20charge%20and%20spin%20dynamics%20in%20thin%20ferromagnetic%20films.%20Both%20itinerant%20and%20localized%20magnetism%20are%20taken%20into%20account.%20It%20is%20shown%20that%20an%20oscillating%20spin%20current%20can%20be%20generated%20in%20the%20film%20via%20the%20application%20of%20a%20femtosecond%20laser%20pulse%20in%20the%20visible%20range.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1103%5C%2FPhysRevB.97.014424%22%2C%22ISSN%22%3A%222469-9950%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1103%5C%2FPhysRevB.97.014424%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222018-05-31T14%3A55%3A34Z%22%7D%7D%2C%7B%22key%22%3A%22HQQA5QXH%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Hurst%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EJ.%20Hurst%2C%20P.M.%20Oppeneer%2C%20G.%20Manfredi%2C%20P.-A.%20Hervieux%2C%20Magnetic%20moment%20generation%20in%20small%20gold%20nanoparticles%20via%20the%20plasmonic%20inverse%20Faraday%20effect%2C%20Physical%20Review%20B%2098%20%282018%29%20134439.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevB.98.134439%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevB.98.134439%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Magnetic%20moment%20generation%20in%20small%20gold%20nanoparticles%20via%20the%20plasmonic%20inverse%20Faraday%20effect%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jerome%22%2C%22lastName%22%3A%22Hurst%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Peter%20M.%22%2C%22lastName%22%3A%22Oppeneer%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Giovanni%22%2C%22lastName%22%3A%22Manfredi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Paul-Antoine%22%2C%22lastName%22%3A%22Hervieux%22%7D%5D%2C%22abstractNote%22%3A%22We%20theoretically%20investigate%20the%20creation%20of%20a%20magnetic%20moment%20in%20gold%20nanoparticles%20by%20circularly%20polarized%20laser%20light.%20To%20this%20end%2C%20we%20describe%20the%20collective%20electron%20dynamics%20in%20gold%20nanoparticles%20using%20a%20semiclassical%20approach%20based%20on%20a%20quantum%20hydrodynamic%20model%20that%20incorporates%20the%20principal%20quantum%20many-body%20and%20nonlocal%20effects%2C%20such%20as%20the%20electron%20spill-out%2C%20the%20Hartree%20potential%2C%20and%20the%20exchange%20and%20correlation%20effects.%20We%20use%20a%20variational%20approach%20to%20investigate%20the%20breathing%20and%20the%20dipole%20dynamics%20induced%20by%20an%20external%20electric%20field.%20We%20show%20that%20gold%20nanoparticles%20can%20build%20up%20a%20static%20magnetic%20moment%20through%20the%20interaction%20with%20a%20circularly%20polarized%20laser%20light%20at%20the%20localized%20surface%20plasmon%20%28LSP%29%20resonance.%20We%20analyze%20that%20the%20responsible%20physical%20mechanism%20is%20a%20plasmonic%2C%20orbital%20inverse%20Faraday%20effect%2C%20which%20can%20be%20understood%20from%20the%20time-averaged%20electron%20current%20that%20contains%20currents%20rotating%20on%20the%20nanoparticle%27s%20surface.%20The%20computed%20laser-induced%20magnetic%20moments%20are%20sizable%2C%20of%20about%200.35%20p.%20B%20%5C%2Fatom%20for%20a%20laser%20intensity%20of%2045%20x%2010%2810%29%20W%5C%2Fcm%282%29%20at%20LSP%20resonance.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1103%5C%2FPhysRevB.98.134439%22%2C%22ISSN%22%3A%222469-9950%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1103%5C%2FPhysRevB.98.134439%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222019-01-15T13%3A13%3A22Z%22%7D%7D%2C%7B%22key%22%3A%22HQ4EKVQW%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Maiuri%20and%20Brazard%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Maiuri%2C%20J.%20Brazard%2C%20Electronic%20Couplings%20in%20%28Bio-%29%20Chemical%20Processes%2C%20Topics%20in%20Current%20Chemistry%20376%20%282018%29%2010.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1007%5C%2Fs41061-017-0180-1%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1007%5C%2Fs41061-017-0180-1%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Electronic%20Couplings%20in%20%28Bio-%29%20Chemical%20Processes%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Margherita%22%2C%22lastName%22%3A%22Maiuri%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Johanna%22%2C%22lastName%22%3A%22Brazard%22%7D%5D%2C%22abstractNote%22%3A%22During%20the%20last%20two%20decades%2C%202D%20optical%20techniques%20have%20been%20extended%20to%20the%20visible%20range%2C%20targeting%20electronic%20transitions.%20Since%20the%20report%20of%20the%20very%20first%202D%20electronic%20measurement%20%28Hybl%20et%20al.%20in%20J%20Chem%20Phys%20115%3A6606-6622%2C%20%5B2001%5D%29%2C%20two-dimensional%20electronic%20spectroscopy%20%282DES%29%20has%20allowed%20fundamentally%20new%20insights%20into%20the%20structure%20and%20dynamics%20of%20condensed-phase%20systems%20%28Ginsberg%20et%20al.%20in%20Acc%20Chem%20Res%2042%3A1352-1363%2C%202009%3B%20Jonas%20in%20Annu%20Rev%20Phys%20Chem%2054%3A425-463%2C%202003%29%2C%20producing%20experiments%20that%20measure%20correlations%20among%20electronic%20states%20of%20an%20absorbing%20species%20within%20complex%20systems.%202DES%20is%20used%20to%20investigate%20photo-physical%20phenomena%20involving%20electronic%20or%20vibrational%20couplings%20in%20multi-chromophoric%20systems%20%5Benergy%20transfer%20in%20photosynthesis%20is%20one%20great%20example%20of%20how%202DES%20can%20disentangle%20various%20energy%20transfer%20pathways%20%28Brixner%20et%20al.%20in%20Nature%20625-628%2C%202005%3B%20Engel%20et%20al.%20in%20Nature%20446%3A782-786%2C%202007%3B%20Collini%20et%20al.%20in%20Nature%20463%3A644-647%2C%202010%29%5D%2C%20but%20also%20ultrafast%20photochemical%20processes%20in%20which%20the%20tracked%20molecules%20change%20permanently%20or%20are%20heterogeneous%20%28Ruetzel%20et%20al.%20in%20Proc%20Natl%20Acad%20Sci%20111%3A4764-4769%2C%202014%3B%20Consani%20et%20al.%20in%20Science%20339%3A%201586-1589%2C%202013%29.%20We%20divide%20this%20chapter%20according%20to%20some%20of%20the%20major%20areas%20that%20have%20been%20established%20thanks%20to%202DES%20in%20the%20following%20fields%3A%20heterogeneity%20of%20systems%2C%20excitation%20energy%20transfer%20mechanisms%2C%20photo-induced%20coherent%20oscillations%20associated%20with%20electronic%20and%20vibrational%20couplings%2C%20and%20complex%20chemical%20reactions%20%28Fig.%201%29.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1007%5C%2Fs41061-017-0180-1%22%2C%22ISSN%22%3A%222365-0869%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1007%5C%2Fs41061-017-0180-1%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222018-06-05T09%3A26%3A07Z%22%7D%7D%2C%7B%22key%22%3A%225IBJ5RI9%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Makarchuk%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3ES.%20Makarchuk%2C%20N.%20Beyer%2C%20C.%20Gaiddon%2C%20W.%20Grange%2C%20P.%20H%26%23xE9%3Bbraud%2C%20Holographic%20Traction%20Force%20Microscopy%2C%20Scientific%20Reports%208%20%282018%29%203038.%20%3Ca%20class%3D%27zp-ItemURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1038%5C%2Fs41598-018-21206-2%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1038%5C%2Fs41598-018-21206-2%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Holographic%20Traction%20Force%20Microscopy%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stanislaw%22%2C%22lastName%22%3A%22Makarchuk%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Nicolas%22%2C%22lastName%22%3A%22Beyer%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Christian%22%2C%22lastName%22%3A%22Gaiddon%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Wilfried%22%2C%22lastName%22%3A%22Grange%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Pascal%22%2C%22lastName%22%3A%22H%5Cu00e9braud%22%7D%5D%2C%22abstractNote%22%3A%22Traction%20Force%20Microscopy%20%28TFM%29%20computes%20the%20forces%20exerted%20at%20the%20surface%20of%20an%20elastic%20material%20by%20measuring%20induced%20deformations%20in%20volume.%20It%20is%20used%20to%20determine%20the%20pattern%20of%20the%20adhesion%20forces%20exerted%20by%20cells%20or%20by%20cellular%20assemblies%20grown%20onto%20a%20soft%20deformable%20substrate.%20Typically%2C%20colloidal%20particles%20are%20dispersed%20in%20the%20substrate%20and%20their%20displacement%20is%20monitored%20by%20fluorescent%20microscopy.%20As%20with%20any%20other%20fluorescent%20techniques%2C%20the%20accuracy%20in%20measuring%20a%20particule%5Cu2019s%20position%20is%20ultimately%20limited%20by%20the%20number%20of%20evaluated%20fluorescent%20photons.%20Here%2C%20we%20present%20a%20TFM%20technique%20based%20on%20the%20detection%20of%20probe%20particle%20displacements%20by%20holographic%20tracking%20microscopy.%20We%20show%20that%20nanometer%20scale%20resolutions%20of%20the%20particle%20displacements%20can%20be%20obtained%20and%20determine%20the%20maximum%20volume%20fraction%20of%20markers%20in%20the%20substrate.%20We%20demonstrate%20the%20feasibility%20of%20the%20technique%20experimentally%20and%20measure%20the%20three-dimensional%20force%20fields%20exerted%20by%20colorectal%20cancer%20cells%20cultivated%20onto%20a%20polyacrylamide%20gel%20substrate.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22%22%2C%22DOI%22%3A%2210.1038%5C%2Fs41598-018-21206-2%22%2C%22ISSN%22%3A%222045-2322%22%2C%22url%22%3A%22https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1038%5C%2Fs41598-018-21206-2%22%2C%22collections%22%3A%5B%222DH6J37C%22%2C%22CHW2VGSR%22%2C%22TK3HH32E%22%2C%22TFVWSVG3%22%5D%2C%22dateModified%22%3A%222018-05-31T14%3A58%3A11Z%22%7D%7D%2C%7B%22key%22%3A%226WBNX8PB%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Manathunga%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Manathunga%2C%20X.%20Yang%2C%20M.%20Olivucci%2C%20Electronic%20State%20Mixing%20Controls%20the%20Photoreactivity%20of%20a%20Rhodopsin%20with%20all-trans%20Chromophore%20Analogues%2C%20Journal%20of%20Physical%20Chemistry%20Letters%209%20%282018%29%206350%26%23x2013%3B6355.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jpclett.8b02550%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jpclett.8b02550%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Electronic%20State%20Mixing%20Controls%20the%20Photoreactivity%20of%20a%20Rhodopsin%20with%20all-trans%20Chromophore%20Analogues%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Madushanka%22%2C%22lastName%22%3A%22Manathunga%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Xuchun%22%2C%22lastName%22%3A%22Yang%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Massimo%22%2C%22lastName%22%3A%22Olivucci%22%7D%5D%2C%22abstractNote%22%3A%22Rhodopsins%20hosting%20synthetic%20retinal%20protonated%20Schiff%20base%20analogues%20are%20important%20for%20developing%20tools%20for%20optogenetics%20and%20high-resolution%20imaging.%20The%20ideal%20spectroscopic%20properties%20of%20such%20analogues%20include%20long-wavelength%20absorption%5C%2Femission%20and%20fast%5C%2Fhindered%20photoisomerization.%20While%20the%20former%20may%20be%20achieved%2C%20for%20instance%2C%20by%20elongating%20the%20chromophore%20pi-system%2C%20the%20latter%20requires%20a%20detailed%20understanding%20of%20the%20substituent%20effects%20%28i.e.%2C%20steric%20or%20electronic%29%20on%20the%20chromophore%20light-induced%20dynamics.%20In%20the%20present%20letter%20we%20compare%20the%20results%20of%20quantum%20mechanics%5C%2Fmolecular%20mechanics%20excited-state%20trajectories%20of%20native%20and%20analogue-hosting%20microbial%20rhodopsins%20from%20the%20eubacterium%20Anabaena.%20The%20results%20uncover%20a%20relationship%20between%20the%20nature%20of%20the%20substituent%20on%20the%20analogue%20%28i.e.%2C%20electron-donating%20%28a%20Me%20group%29%20or%20electron-withdrawing%20%28a%20CF3%20group%29%29%20and%20rhodopsin%20excited-state%20lifetime.%20Most%20importantly%2C%20we%20show%20that%20electron-donating%20or%20-withdrawing%20substituents%20cause%20a%20decrease%20or%20an%20increase%20in%20the%20electronic%20mixing%20of%20the%20first%20two%20excited%20states%20which%2C%20in%20turn%2C%20controls%20the%20photoisomerization%20speed.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1021%5C%2Facs.jpclett.8b02550%22%2C%22ISSN%22%3A%221948-7185%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1021%5C%2Facs.jpclett.8b02550%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222019-01-14T15%3A37%3A22Z%22%7D%7D%2C%7B%22key%22%3A%225MTIJ6PT%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Manfredi%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EG.%20Manfredi%2C%20Preface%20to%20Special%20Topic%3A%20Plasmonics%20and%20solid%20state%20plasmas%2C%20Physics%20of%20Plasmas%2025%20%282018%29%20031701.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1063%5C%2F1.5026653%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1063%5C%2F1.5026653%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Preface%20to%20Special%20Topic%3A%20Plasmonics%20and%20solid%20state%20plasmas%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Giovanni%22%2C%22lastName%22%3A%22Manfredi%22%7D%5D%2C%22abstractNote%22%3A%22Plasmonics%2C%20the%20study%20of%20the%20interaction%20of%20electromagnetic%20radiation%20with%20electrons%20in%20solids%2C%20is%20an%20exciting%20new%20field%20that%20has%20developed%20fast%20since%20the%201980s%20and%20is%20still%20growing%20steadily.%20Yet%2C%20plasma%20physicists%20have%20devoted%20little%20attention%20to%20it.%20This%20special%20collection%20would%20like%20to%20bridge%20the%20gap%20between%20plasmas%20and%20plasmonics%20and%20encourage%20plasma%20physicists%20to%20have%20their%20say%20in%20this%20burgeoning%20research%20field.%20Published%20by%20AIP%20Publishing.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1063%5C%2F1.5026653%22%2C%22ISSN%22%3A%221070-664X%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1063%5C%2F1.5026653%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222018-06-05T12%3A17%3A28Z%22%7D%7D%2C%7B%22key%22%3A%225P48TIU4%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Manfredi%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EG.%20Manfredi%2C%20J.-L.%20Rouet%2C%20B.%20Miller%2C%20G.%20Chardin%2C%20Cosmological%20structure%20formation%20with%20negative%20mass%2C%20Physical%20Review%20D%2098%20%282018%29%20023514.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevD.98.023514%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevD.98.023514%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Cosmological%20structure%20formation%20with%20negative%20mass%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Giovanni%22%2C%22lastName%22%3A%22Manfredi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jean-Louis%22%2C%22lastName%22%3A%22Rouet%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bruce%22%2C%22lastName%22%3A%22Miller%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gabriel%22%2C%22lastName%22%3A%22Chardin%22%7D%5D%2C%22abstractNote%22%3A%22We%20construct%20a%20family%20of%20models%20with%20negative%20gravitational%20mass%20in%20the%20context%20of%20Newtonian%20gravity.%20We%20focus%2C%20in%20particular%2C%20on%20a%20model%20that%20reproduces%20the%20features%20of%20the%20so-called%20Dirac-Milne%20universe%2C%20a%20matter-antimatter%20symmetric%20universe%20that%20was%20recently%20proposed%20as%20an%20alternative%20cosmological%20scenario%20%5BA.%20Benoit-Levy%20and%20G.%20Chardin%2C%20Astron.%20Astrophys.%20537%2C%20A78%20%282012%29%5D.%20We%20perform%20one-dimensional%20N-body%20simulations%20of%20these%20negative-mass%20models%20for%20an%20expanding%20universe%20and%20study%20the%20associated%20formation%20of%20gravitational%20structures.%20The%20similarities%20and%20differences%20with%20the%20standard%20cosmological%20model%20are%20highlighted%20and%20discussed.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1103%5C%2FPhysRevD.98.023514%22%2C%22ISSN%22%3A%222470-0010%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1103%5C%2FPhysRevD.98.023514%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222018-11-07T14%3A22%3A27Z%22%7D%7D%2C%7B%22key%22%3A%22WXBJ6FJI%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Manfredi%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EG.%20Manfredi%2C%20J.%20Hurst%2C%20P.-A.%20Hervieux%2C%20Ultrafast%20spin%20current%20generation%20in%20ferromagnetic%20thin%20films%2C%20in%3A%20Drouhin%2C%20HJ%20and%20Wegrowe%2C%20JE%20and%20Razeghi%2C%20M%20and%20Jaffres%2C%20H%20%28Ed.%29%2C%20SPINTRONICS%20XI%2C%20SPIE-INT%20SOC%20OPTICAL%20ENGINEERING%2C%202018.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1117%5C%2F12.2319953%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1117%5C%2F12.2319953%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Ultrafast%20spin%20current%20generation%20in%20ferromagnetic%20thin%20films%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Giovanni%22%2C%22lastName%22%3A%22Manfredi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jerome%22%2C%22lastName%22%3A%22Hurst%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Paul-Antoine%22%2C%22lastName%22%3A%22Hervieux%22%7D%2C%7B%22creatorType%22%3A%22editor%22%2C%22name%22%3A%22Drouhin%2C%20HJ%20and%20Wegrowe%2C%20JE%20and%20Razeghi%2C%20M%20and%20Jaffres%2C%20H%22%7D%5D%2C%22abstractNote%22%3A%22Spin%20currents%20have%20been%20shown%20to%20play%20a%20key%20role%20in%20the%20ultrafast%20laser-driven%20demagnetization%20process%20in%20ferromagnetic%20thin%20films.%20Here%2C%20we%20show%20that%20an%20oscillating%20spin%20current%20can%20be%20generated%20in%20the%20film%20via%20the%20application%20of%20a%20femtosecond%20laser%20pulse%20in%20the%20visible%20range.%20In%20particular%2C%20we%20prove%20that%20the%20spin%20current%20is%20due%20to%20ballistic%20electrons%20traveling%20back%20and%20forth%20in%20the%20film.%20The%20dependence%20of%20the%20current%20intensity%20on%20the%20driving%20electric%20field%20is%20also%20investigated.%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%22SPINTRONICS%20XI%22%2C%22conferenceName%22%3A%2211th%20Spintronics%20Symposium%2C%20San%20Diego%2C%20CA%2C%2019-23%20a%5Cu00f4ut%2C%202018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1117%5C%2F12.2319953%22%2C%22ISBN%22%3A%22978-1-5106-2036-0%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1117%5C%2F12.2319953%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222022-01-13T07%3A54%3A54Z%22%7D%7D%2C%7B%22key%22%3A%22EGTXCXF4%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Manfredi%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EG.%20Manfredi%2C%20P.-A.%20Hervieux%2C%20F.%20Tanjia%2C%20Quantum%20hydrodynamics%20for%20nanoplasmonics%2C%20in%3A%20Tsai%2C%20DP%20and%20Tanaka%2C%20T%20%28Ed.%29%2C%20Plasmonics%3A%20Design%2C%20Materials%2C%20Fabrication%2C%20Characterization%2C%20and%20Applications%20XVI%2C%20SPIE-INT%20SOC%20OPTICAL%20ENGINEERING%2C%202018.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1117%5C%2F12.2320737%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1117%5C%2F12.2320737%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Quantum%20hydrodynamics%20for%20nanoplasmonics%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Giovanni%22%2C%22lastName%22%3A%22Manfredi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Paul-Antoine%22%2C%22lastName%22%3A%22Hervieux%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Fatema%22%2C%22lastName%22%3A%22Tanjia%22%7D%2C%7B%22creatorType%22%3A%22editor%22%2C%22name%22%3A%22Tsai%2C%20DP%20and%20Tanaka%2C%20T%22%7D%5D%2C%22abstractNote%22%3A%22Quantum%20effects%20play%20a%20significant%20role%20in%20nanometric%20plasmonic%20devices%2C%20such%20as%20small%20metal%20clusters%20and%20metallic%20nanoshells.%20For%20structures%20containing%20a%20large%20number%20of%20electrons%2C%20ab-initio%20methods%20such%20as%20the%20time-dependent%20density%20functional%20theory%20%28TD-DFT%29%20are%20often%20impractical%20because%20of%20severe%20computational%20constraints.%20Quantum%20hydrodynamics%20%28QHD%29%20offers%20a%20valuable%20alternative%20by%20representing%20the%20electron%20population%20as%20a%20continuous%20fluid%20medium%20evolving%20under%20the%20action%20of%20the%20self-consistent%20and%20external%20fields.%20Although%20relatively%20simple%2C%20QHD%20can%20incorporate%20quantum%20and%20nonlinear%20effects%2C%20nonlocal%20effects%20such%20as%20the%20electron%20spillout%2C%20as%20well%20as%20exchange%20and%20correlations.%20Here%2C%20we%20show%20an%20application%20of%20the%20QHD%20methods%20to%20the%20plasmonic%20breathing%20oscillations%20in%20metallic%20nanoshells.%20We%20illustrate%20the%20main%20advantages%20of%20this%20approach%20by%20comparing%20systematically%20the%20QHD%20results%20with%20those%20obtained%20with%20a%20TD-DFT%20code.%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%22Plasmonics%3A%20Design%2C%20Materials%2C%20Fabrication%2C%20Characterization%2C%20and%20Applications%20XVI%22%2C%22conferenceName%22%3A%22SPIE%20Optics%20%2B%20Photonics%20Conference%20on%20Plasmonics%20-%20Design%2C%20Materials%2C%20Fabrication%2C%20Characterization%2C%20and%20Applications%20XVI%2C%20San%20Diego%2C%20CA%2C%2019-23%20ao%5Cu00fbt%202018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1117%5C%2F12.2320737%22%2C%22ISBN%22%3A%22978-1-5106-2016-2%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1117%5C%2F12.2320737%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222022-01-25T08%3A54%3A09Z%22%7D%7D%2C%7B%22key%22%3A%22CTD84DPI%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Mouawad%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EL.%20Mouawad%2C%20P.-A.%20Hervieux%2C%20C.%20Dal%20Cappello%2C%20J.%20Pansanel%2C%20V.%20Robert%2C%20Z.%20El%20Bitar%2C%20Triple%20differential%20cross%20sections%20for%20the%20ionization%20of%20tetrahydrofuran%20by%20electron%20impact%2C%20Journal%20of%20Physics%20B-Atomic%20Molecular%20and%20Optical%20Physics%2051%20%282018%29%20175201.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1088%5C%2F1361-6455%5C%2Faad6cf%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1088%5C%2F1361-6455%5C%2Faad6cf%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Triple%20differential%20cross%20sections%20for%20the%20ionization%20of%20tetrahydrofuran%20by%20electron%20impact%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Lena%22%2C%22lastName%22%3A%22Mouawad%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Paul-Antoine%22%2C%22lastName%22%3A%22Hervieux%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Claude%22%2C%22lastName%22%3A%22Dal%20Cappello%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jerome%22%2C%22lastName%22%3A%22Pansanel%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vincent%22%2C%22lastName%22%3A%22Robert%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ziad%22%2C%22lastName%22%3A%22El%20Bitar%22%7D%5D%2C%22abstractNote%22%3A%22We%20provide%20triple%20differential%20cross%20sections%20%28TDCS%29%20for%20the%20ionization%20of%20tetrahydrofuran%20%28THF%29%20by%20single%20electron%20impact%20in%20coplanar%20asymmetric%20kinematics%20in%20the%20intermediate%20energy%20regime.%20For%20the%20C-s%20and%20C-2%20THF%20isomers%2C%20the%20analysis%20is%20carried%20out%20using%20%28i%29%20the%20highest%20occupied%20molecular%20orbitals%20energies%20available%20from%20ab%20initio%20calculations%2C%20and%20%28ii%29%20the%20TDCSs%20computed%20from%20a%20Coulomb%20wave%20%28CW%29%20and%20a%20distorted%20wave%20%28DW%29%20to%20describe%20the%20ejected%20electron.%20The%20calculated%20TDCSs%20using%20both%20the%20CW%20and%20DW%20models%20are%20in%20better%20agreement%20with%20experimental%20data%20than%20those%20obtained%20using%20the%20molecular%20three-body%20distorted%20wave%20model.%20Hence%2C%20we%20show%20that%20the%20developed%20framework%20can%20be%20applied%20to%20a%20relatively%20complex%20molecule%20and%20that%20the%20proposed%20models%20successfully%20describe%20the%20ionization%20of%20both%20THF%20isomers.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1088%5C%2F1361-6455%5C%2Faad6cf%22%2C%22ISSN%22%3A%220953-4075%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1088%5C%2F1361-6455%5C%2Faad6cf%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222019-01-15T14%3A49%3A25Z%22%7D%7D%2C%7B%22key%22%3A%22UZV56F9G%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Nassar%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Nassar%2C%20A.%20Gromer%2C%20F.%20Thalmann%2C%20P.%20H%26%23xE9%3Bbraud%2C%20Y.%20Holl%2C%20Velocity%20of%20lateral%20drying%20fronts%20in%20film%20formation%20by%20drying%20of%20colloidal%20dispersions.%20A%202D%20simulation%2C%20Journal%20of%20Colloid%20and%20Interface%20Science%20511%20%282018%29%20424%26%23x2013%3B433.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1016%5C%2Fj.jcis.2017.10.010%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1016%5C%2Fj.jcis.2017.10.010%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Velocity%20of%20lateral%20drying%20fronts%20in%20film%20formation%20by%20drying%20of%20colloidal%20dispersions.%20A%202D%20simulation%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22M.%22%2C%22lastName%22%3A%22Nassar%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22A.%22%2C%22lastName%22%3A%22Gromer%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22F.%22%2C%22lastName%22%3A%22Thalmann%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22P.%22%2C%22lastName%22%3A%22H%5Cu00e9braud%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Y.%22%2C%22lastName%22%3A%22Holl%22%7D%5D%2C%22abstractNote%22%3A%22Drying%20of%20colloids%20is%20always%20heterogeneous%20and%20proceeds%20by%20progression%20of%20drying%20fronts%20in%20various%20directions%20at%20various%20velocities.%20The%20fundamental%20mechanisms%20at%20the%20origin%20of%20appearance%20and%20motion%20of%20drying%20fronts%20are%20still%20not%20totally%20understood.%20This%20article%20addresses%20these%20questions%20in%20the%20case%20of%20lateral%20drying%20fronts%20by%20using%20the%20new%20simulation%20tool%20based%20on%20cellular%20automata%20we%20recently%20developed%20%28Langmuir%202015%20and%202017%29.%20For%20the%20first%20time%2C%20a%202D%20simulation%20is%20proposed.%20Silica%20dispersions%20were%20used%20as%20model%20colloids%20to%20test%20the%20simulation.%20Film%20profiles%20were%20measured%20during%20drying%20by%20optical%20profilometry%20as%20well%20as%20front%20velocities%20by%20image%20processing.%20In%20the%20cases%20of%20non-circular%20deposits%20%28squares%20and%20rectangles%29%2C%20drying%20fronts%20in%20the%20plane%20of%20the%20film%20%28x%2Cy%20plane%2C%20x%20being%20the%20longest%20side%20in%20the%20case%20of%20a%20rectangle%29%20do%20not%20move%20at%20the%20same%20speed%20along%20sides%20and%20diagonals%2C%20the%20velocity%20order%20being%20diagonal%20%3E%20x%20%28longest%20side%29%20%3E%20y%20%28shortest%20side%29.%20The%20velocity%20contrast%20%28difference%20between%20x%20and%20y%20sides%29%20increases%20with%20the%20aspect%20ratio%20of%20the%20rectangle.%20This%20behavior%20is%20explained%20and%20accounted%20for%20by%20the%202D%20simulation%20presented%20in%20this%20article.%20Experimental%20results%20reasonably%20well%20validate%20the%20simulation.%20%28C%29%202017%20Published%20by%20Elsevier%20Inc.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1016%5C%2Fj.jcis.2017.10.010%22%2C%22ISSN%22%3A%220021-9797%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1016%5C%2Fj.jcis.2017.10.010%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22TFVWSVG3%22%5D%2C%22dateModified%22%3A%222021-11-17T15%3A03%3A01Z%22%7D%7D%2C%7B%22key%22%3A%228NAE2T67%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Quattropani%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EA.%20Quattropani%2C%20A.S.%20Makhort%2C%20M.V.%20Rastei%2C%20G.%20Versini%2C%20G.%20Schmerber%2C%20S.%20Barre%2C%20A.%20Dinia%2C%20A.%20Slaoui%2C%20J.-L.%20Rehspringer%2C%20T.%20Fix%2C%20S.%20Colis%2C%20B.%20Kundys%2C%20Tuning%20photovoltaic%20response%20in%20Bi2FeCrO6%20films%20by%20ferroelectric%20poling%2C%20Nanoscale%2010%20%282018%29%2013761%26%23x2013%3B13766.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8nr03137a%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc8nr03137a%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Tuning%20photovoltaic%20response%20in%20Bi2FeCrO6%20films%20by%20ferroelectric%20poling%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Alessandro%22%2C%22lastName%22%3A%22Quattropani%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Anatolii%20S.%22%2C%22lastName%22%3A%22Makhort%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mircea%20V.%22%2C%22lastName%22%3A%22Rastei%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Gilles%22%2C%22lastName%22%3A%22Versini%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Guy%22%2C%22lastName%22%3A%22Schmerber%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sophie%22%2C%22lastName%22%3A%22Barre%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Aziz%22%2C%22lastName%22%3A%22Dinia%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Abdelilah%22%2C%22lastName%22%3A%22Slaoui%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jean-Luc%22%2C%22lastName%22%3A%22Rehspringer%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Thomas%22%2C%22lastName%22%3A%22Fix%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Silviu%22%2C%22lastName%22%3A%22Colis%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Bohdan%22%2C%22lastName%22%3A%22Kundys%22%7D%5D%2C%22abstractNote%22%3A%22Ferroelectric%20materials%20are%20interesting%20candidates%20for%20future%20photovoltaic%20applications%20due%20to%20their%20potential%20to%20overcome%20the%20fundamental%20limits%20of%20conventional%20single%20bandgap%20semiconductor-based%20solar%20cells.%20Although%20a%20more%20efficient%20charge%20separation%20and%20above%20bandgap%20photovoltages%20are%20advantageous%20in%20these%20materials%2C%20tailoring%20their%20photovoltaic%20response%20using%20ferroelectric%20functionalities%20remains%20puzzling.%20Here%20we%20address%20this%20issue%20by%20reporting%20a%20clear%20hysteretic%20character%20of%20the%20photovoltaic%20effect%20as%20a%20function%20of%20electric%20field%20and%20its%20dependence%20on%20the%20poling%20history.%20Furthermore%2C%20we%20obtain%20insight%20into%20light%20induced%20nonequilibrium%20charge%20carrier%20dynamics%20in%20Bi2FeCrO6%20films%20involving%20not%20only%20charge%20generation%2C%20but%20also%20recombination%20processes.%20At%20the%20ferroelectric%20remanence%2C%20light%20is%20able%20to%20electrically%20depolarize%20the%20films%20with%20remanent%20and%20transient%20effects%20as%20evidenced%20by%20electrical%20and%20piezoresponse%20force%20microscopy%20%28PFM%29%20measurements.%20The%20hysteretic%20nature%20of%20the%20photovoltaic%20response%20and%20its%20nonlinear%20character%20at%20larger%20light%20intensities%20can%20be%20used%20to%20optimize%20the%20photovoltaic%20performance%20of%20future%20ferroelectric-based%20solar%20cells.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc8nr03137a%22%2C%22ISSN%22%3A%222040-3364%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc8nr03137a%22%2C%22collections%22%3A%5B%222DH6J37C%22%2C%22CHW2VGSR%22%2C%22UVN4N32C%22%2C%22VRM2E3H6%22%2C%22ZN5EITAC%22%2C%22CF4ZI7HM%22%2C%22N8397DCZ%22%2C%22SB8Q592R%22%2C%22TBP4QFHK%22%2C%22UBUT97QT%22%2C%22IEGKATUQ%22%5D%2C%22dateModified%22%3A%222021-04-30T14%3A30%3A45Z%22%7D%7D%2C%7B%22key%22%3A%2224JRGERW%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Quattropani%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EA.%20Quattropani%2C%20D.%20Stoeffler%2C%20T.%20Fix%2C%20G.%20Schmerber%2C%20M.%20Lenertz%2C%20G.%20Versini%2C%20J.L.%20Rehspringer%2C%20A.%20Slaoui%2C%20A.%20Dinia%2C%20S.%20Cois%2C%20Band-Gap%20Tuning%20in%20Ferroelectric%20Bi2FeCrO6%20Double%20Perovskite%20Thin%20Films%2C%20Journal%20of%20Physical%20Chemistry%20C%20122%20%282018%29%201070%26%23x2013%3B1077.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jpcc.7b10622%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jpcc.7b10622%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Band-Gap%20Tuning%20in%20Ferroelectric%20Bi2FeCrO6%20Double%20Perovskite%20Thin%20Films%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22A.%22%2C%22lastName%22%3A%22Quattropani%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22D.%22%2C%22lastName%22%3A%22Stoeffler%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22T.%22%2C%22lastName%22%3A%22Fix%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22G.%22%2C%22lastName%22%3A%22Schmerber%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22M.%22%2C%22lastName%22%3A%22Lenertz%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22G.%22%2C%22lastName%22%3A%22Versini%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J.%20L.%22%2C%22lastName%22%3A%22Rehspringer%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22A.%22%2C%22lastName%22%3A%22Slaoui%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22A.%22%2C%22lastName%22%3A%22Dinia%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22S.%22%2C%22lastName%22%3A%22Cois%22%7D%5D%2C%22abstractNote%22%3A%22We%20report%20in%20this%20work%20on%20the%20variation%20of%20the%20optical%20band%20gap%20and%20structural%20properties%20of%20epitaxial%2025%20Bi2FeCrO6%20films%20grown%20by%20pulsed%20laser%20deposition%20on%20SrTiO3%28001%29%20substrates.%20It%20is%20shown%20that%20the%20band%20gap%20can%20be%20tuned%20by%20varying%20the%20laser%20repetition%20rate%20during%20deposition%20which%20has%20a%20strong%20impact%20on%20the%20Fe%5C%2FCr%20order%20inside%20the%20Bi2FeCrO6%20double%20perovskite%20structure.%20Ab%20initio%20band%20structure%20calculations%20unambiguously%20show%20that%20the%20presence%20of%20antisite%20defects%20leads%20to%20an%20increase%20of%20the%20gap%20of%20about%200.25%20eV%20with%20respect%20to%20the%20one%20calculated%20in%20the%20ideal%20structure.%20It%20is%20also%20shown%20that%20with%20increasing%20Fe%5C%2FCr%20disorder%20the%20saturation%20magnetization%20is%20strongly%20reduced%20along%2Cwith%20the%20difference%20between%20the%20Fe%20and%20Cr%20valences.%20These%20results%20suggest%20that%20the%20band%20gap%20of%20Bi2FeCrO6%20can%20effectively%20be%20engineered%20by%20modulating%20the%20deposition%20conditions%2C%20thus%20paving%20the%20way%20for%20applications%20such%20as%20photovoltaic%20conversion%2C%20memory%20writing%2C%20and%20direct%20CMOS%20integration.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1021%5C%2Facs.jpcc.7b10622%22%2C%22ISSN%22%3A%221932-7447%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1021%5C%2Facs.jpcc.7b10622%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22D8DBRKSX%22%2C%22UVN4N32C%22%2C%22ZN5EITAC%22%2C%226IWM732K%22%2C%22CF4ZI7HM%22%2C%22SB8Q592R%22%2C%22TBP4QFHK%22%2C%22UBUT97QT%22%5D%2C%22dateModified%22%3A%222022-02-11T15%3A41%3A35Z%22%7D%7D%2C%7B%22key%22%3A%22TGQAHPJR%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Segarra-Marti%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EJ.%20Segarra-Marti%2C%20E.%20Zvereva%2C%20M.%20Marazzi%2C%20J.%20Brazard%2C%20E.%20Dumont%2C%20X.%20Assfeld%2C%20S.%20Haacke%2C%20M.%20Garavelli%2C%20A.%20Monari%2C%20J.%20L%26%23xE9%3Bonard%2C%20I.%20Rivalta%2C%20Resolving%20the%20Singlet%20Excited%20State%20Manifold%20of%20Benzophenone%20by%20First-Principles%20Simulations%20and%20Ultrafast%20Spectroscopy%2C%20Journal%20of%20Chemical%20Theory%20and%20Computation%2014%20%282018%29%202570%26%23x2013%3B2585.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jctc.7b01208%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1021%5C%2Facs.jctc.7b01208%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Resolving%20the%20Singlet%20Excited%20State%20Manifold%20of%20Benzophenone%20by%20First-Principles%20Simulations%20and%20Ultrafast%20Spectroscopy%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Javier%22%2C%22lastName%22%3A%22Segarra-Marti%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Elena%22%2C%22lastName%22%3A%22Zvereva%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marco%22%2C%22lastName%22%3A%22Marazzi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Johanna%22%2C%22lastName%22%3A%22Brazard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Elise%22%2C%22lastName%22%3A%22Dumont%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Xavier%22%2C%22lastName%22%3A%22Assfeld%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marco%22%2C%22lastName%22%3A%22Garavelli%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Antonio%22%2C%22lastName%22%3A%22Monari%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J%5Cu00e9r%5Cu00e9mie%22%2C%22lastName%22%3A%22L%5Cu00e9onard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ivan%22%2C%22lastName%22%3A%22Rivalta%22%7D%5D%2C%22abstractNote%22%3A%22Accurate%20characterization%20of%20the%20high-lying%20excited%20state%20manifolds%20of%20organic%20molecules%20is%20of%20fundamental%20importance%20for%20the%20interpretation%20of%20the%20rich%20response%20detected%20in%20time-resolved%20nonlinear%20electronic%20spectroscopies.%20Here%2C%20we%20have%20characterized%20the%20singlet%20excited%20state%20manifold%20of%20benzophenone%20%28BP%29%2C%20a%20versatile%20organic%20photoinitiator%20and%20a%20well-known%20DNA%20photosensitizer.%20Benchmarks%20of%20various%20multiconfigurational%5C%2Fmultireference%20%28RASSCF%5C%2FPT2%29%20and%20time-dependent%20density%20functional%20theory%20%28TD-DFT%29%20approaches%20allowed%20assignments%20of%20experimental%20linear%20absorption%20signals%20of%20BP%20in%20the%20ultraviolet%20%28UV%29%20region%2C%20with%20unprecedented%20characterization%20of%20ground%20state%20absorptions%20in%20the%20far%20UV.%20Experimental%20transient%20absorption%20spectra%20obtained%20by%20UV-vis%20pump-probe%20spectroscopy%20at%20very%20short%20time%20delays%20are%20shown%20to%20be%20directly%20comparable%20to%20theoretical%20estimates%20of%20excited%20state%20absorptions%20%28from%20the%20low-lying%20note%20and%20ire%20singlet%20states%29%20in%20the%20Franck-Condon%20region.%20Multireference%20computations%20provided%20reliable%20interpretation%20of%20the%20PP%20spectra%2C%20with%20TD-DFT%20results%20yielding%20a%20fair%20agreement%20as%20long%20as%20electronic%20transitions%20featuring%20double%20excitations%20contributions%20are%20not%20involved.%20These%20results%20lay%20the%20groundwork%20for%20further%20computational%20studies%20and%20interpretation%20of%20experimental%20nonlinear%20electronic%20spectra%20of%20benzophenone%20in%20more%20complex%20systems%2C%20such%20as%20BP%5C%2FDNA%20adducts.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1021%5C%2Facs.jctc.7b01208%22%2C%22ISSN%22%3A%221549-9618%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1021%5C%2Facs.jctc.7b01208%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222018-06-08T09%3A48%3A43Z%22%7D%7D%2C%7B%22key%22%3A%22UBKMU2IZ%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Skilitsi%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EA.I.%20Skilitsi%2C%20D.%20Agathangelou%2C%20I.%20Shulov%2C%20J.%20Conyard%2C%20S.%20Haacke%2C%20Y.%20Mely%2C%20A.%20Klymchenko%2C%20J.%20L%26%23xE9%3Bonard%2C%20Ultrafast%20photophysics%20of%20the%20environment-sensitive%204%5Bprime%20or%20minute%5D-methoxy-3-hydroxyflavone%20fluorescent%20dye%2C%20Physical%20Chemistry%20Chemical%20Physics%2020%20%282018%29%207885%26%23x2013%3B7895.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC7CP08584B%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2FC7CP08584B%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Ultrafast%20photophysics%20of%20the%20environment-sensitive%204%5Bprime%20or%20minute%5D-methoxy-3-hydroxyflavone%20fluorescent%20dye%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Anastasia%20Ioanna%22%2C%22lastName%22%3A%22Skilitsi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Damianos%22%2C%22lastName%22%3A%22Agathangelou%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ievgen%22%2C%22lastName%22%3A%22Shulov%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jamie%22%2C%22lastName%22%3A%22Conyard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Yves%22%2C%22lastName%22%3A%22Mely%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Andrey%22%2C%22lastName%22%3A%22Klymchenko%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J%5Cu00e9r%5Cu00e9mie%22%2C%22lastName%22%3A%22L%5Cu00e9onard%22%7D%5D%2C%22abstractNote%22%3A%22The%20excited%20state%20intramolecular%20proton%20transfer%20%28ESIPT%29%20of%203-hydroxyflavone%20derivatives%20results%20in%20a%20fluorescence%20spectrum%20composed%20of%20two%20emission%20bands%2C%20the%20relative%20intensity%20of%20which%20is%20strongly%20influenced%20by%20the%20interaction%20with%20the%20local%20environment.%20We%20use%20time-resolved%20fluorescence%20and%20ultrafast%20transient%20absorption%20spectroscopies%20to%20investigate%20the%20photophysics%20of%204%5Bprime%20or%20minute%5D-methoxy-3-hydroxyflavone%20in%20different%20solvents%20characterized%20by%20various%20polarities%20and%20hydrogen%20%28H%29%20bonding%20capabilities.%20We%20evidence%20that%20in%20this%20compound%2C%20the%20ESIPT%20reaction%20rate%20varies%20by%20more%20than%203%20orders%20of%20magnitude%2C%20depending%20on%20the%20H-bonding%20capability%20of%20its%20local%20environment.%20This%20remarkable%20property%20is%20attributed%20to%20the%20moderate%20electron-donating%20strength%20of%20the%204%5Bprime%20or%20minute%5D-methoxy%20substituent%2C%20and%20turns%20this%20fluorescent%20dye%20into%20a%20very%20promising%20fluorescent%20probe%20of%20biomolecular%20structures%20and%20interactions%2C%20where%20local%20structural%20heterogeneity%20may%20possibly%20be%20revealed%20by%20resolving%20a%20distribution%20of%20ESIPT%20reaction%20rates.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22%22%2C%22DOI%22%3A%2210.1039%5C%2FC7CP08584B%22%2C%22ISSN%22%3A%22%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2FC7CP08584B%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222021-06-09T14%3A41%3A30Z%22%7D%7D%2C%7B%22key%22%3A%22W9BB4VKR%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Tanjia%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EF.%20Tanjia%2C%20J.%20Hurst%2C%20P.-A.%20Hervieux%2C%20G.%20Manfredi%2C%20Plasmonic%20breathing%20modes%20in%20C-60%20molecules%3A%20A%20quantum%20hydrodynamic%20approach%2C%20Physical%20Review%20A%2098%20%282018%29%20043430.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevA.98.043430%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevA.98.043430%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Plasmonic%20breathing%20modes%20in%20C-60%20molecules%3A%20A%20quantum%20hydrodynamic%20approach%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Fatema%22%2C%22lastName%22%3A%22Tanjia%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Jerome%22%2C%22lastName%22%3A%22Hurst%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Paul-Antoine%22%2C%22lastName%22%3A%22Hervieux%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Giovanni%22%2C%22lastName%22%3A%22Manfredi%22%7D%5D%2C%22abstractNote%22%3A%22We%20propose%20and%20illustrate%20a%20quantum%20hydrodynamic%20%28QHD%29%20model%20for%20the%20description%20of%20plasmonic%20oscillations%20in%20the%20C-60%20molecule.%20Although%20simpler%20than%20competing%20approaches%20such%20as%20time-dependent%20density-functional%20theory%20%28TDDFT%29%2C%20the%20model%20contains%20the%20key%20ingredients%20to%20characterize%20plasmonic%20modes%2C%20namely%20the%20Hartree%2C%20exchange%2C%20and%20correlation%20potentials%2C%20as%20well%20as%20nonlocal%2C%20nonlinear%2C%20and%20quantum%20effects%20to%20the%20lowest%20order.%20A%20variational%20technique%20is%20used%20to%20solve%20analytically%20the%20QHD%20model%20for%20the%20case%20of%20breathing%20%28monopolar%29%20plasmonic%20oscillations%2C%20revealing%20a%20bulk%20mode%20near%20the%20plasmon%20frequency.%20Numerical%20simulations%20of%20both%20the%20QHD%20equations%20and%20a%20TDDFT%20model%20confirm%20the%20existence%20of%20this%20mode%20and%20highlight%20a%20second%20collective%20mode%20at%20lower%20energy.%20Such%20monopolar%20modes%20may%20be%20measured%20experimentally%20using%20electron%20energy-loss%20spectroscopy.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1103%5C%2FPhysRevA.98.043430%22%2C%22ISSN%22%3A%222469-9926%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1103%5C%2FPhysRevA.98.043430%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222019-01-15T16%3A07%3A57Z%22%7D%7D%2C%7B%22key%22%3A%22UZZH84CI%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Valdes%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Valdes%2C%20M.%20Dufour%2C%20R.%20Lazauskas%2C%20P.-A.%20Hervieux%2C%20Ab%20initio%20calculations%20of%20scattering%20cross%20sections%20of%20the%20three-body%20system%20%28%28p%29over-bar%2Ce%28%2B%29%2Ce%28-%29%29%20between%20the%20e%28-%29%20%2B%20%28H%29over-bar%28n%3D2%29%20and%20e%28-%29%20%2B%20%28H%29over-bar%28n%3D3%29%20thresholds%2C%20Physical%20Review%20A%2097%20%282018%29%20012709.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevA.97.012709%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1103%5C%2FPhysRevA.97.012709%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Ab%20initio%20calculations%20of%20scattering%20cross%20sections%20of%20the%20three-body%20system%20%28%28p%29over-bar%2Ce%28%2B%29%2Ce%28-%29%29%20between%20the%20e%28-%29%20%2B%20%28H%29over-bar%28n%3D2%29%20and%20e%28-%29%20%2B%20%28H%29over-bar%28n%3D3%29%20thresholds%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mateo%22%2C%22lastName%22%3A%22Valdes%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marianne%22%2C%22lastName%22%3A%22Dufour%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Rimantas%22%2C%22lastName%22%3A%22Lazauskas%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Paul-Antoine%22%2C%22lastName%22%3A%22Hervieux%22%7D%5D%2C%22abstractNote%22%3A%22The%20ab%20initio%20method%20based%20on%20the%20Faddeev-Merkuriev%20equations%20is%20used%20to%20calculate%20cross%20sections%20involving%20the%20%28%28p%29%20over%20bar%20%2Ce%28%2B%29%2Ce%28-%29%29%20three-body%20system%2C%20with%20an%20emphasis%20on%20antihydrogen%20formation%20%28%28H%29%20over%20bar%29%20via%20antiproton%20%28%28p%29%20over%20bar%29%20scattering%20on%20positronium.%20This%20system%20is%20studied%20in%20the%20energy%20range%20between%20the%20e%28-%29%20%2B%20%28H%29%20over%20bar%20%28n%20%3D%202%29%20and%20the%20e%28-%29%20%2B%20%28H%29%20over%20bar%20%28n%20%3D%203%29%20thresholds%2C%20where%20precisely%20calculated%20cross%20sections%20can%20be%20useful%20for%20future%20experiments%20%28GBAR%2C%20AEGIS%2C%20etc.%29%20aiming%20to%20produce%20antihydrogen%20atoms.%20A%20special%20treatment%20is%20developed%20to%20take%20into%20account%20the%20long-range%20charge-dipole%20interaction%20effect%20on%20the%20wave%20function.%20Emphasis%20is%20placed%20on%20the%20impact%20of%20Feshbach%20resonances%20and%20Gailitis-Damburg%20oscillations%20appearing%20in%20the%20vicinity%20of%20the%20%28p%29%20over%20bar%20%2B%20Ps%28n%20%3D%202%29%20threshold.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1103%5C%2FPhysRevA.97.012709%22%2C%22ISSN%22%3A%222469-9926%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1103%5C%2FPhysRevA.97.012709%22%2C%22collections%22%3A%5B%2288PVNMDA%22%2C%22CHW2VGSR%22%5D%2C%22dateModified%22%3A%222018-05-31T15%3A04%3A10Z%22%7D%7D%2C%7B%22key%22%3A%22E9N47HGN%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Vomir%20and%20Kimel%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Vomir%2C%20A.%20Kimel%2C%20Jean-Yves%20Bigot%2C%20a%20pioneer%20of%20ultrafast%20magnetism%2C%20passed%20away%20on%20May%202%202018%2C%20Journal%20of%20Magnetism%20and%20Magnetic%20Materials%20467%20%282018%29%20A1.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1016%5C%2Fj.jmmm.2018.06.067%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1016%5C%2Fj.jmmm.2018.06.067%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Jean-Yves%20Bigot%2C%20a%20pioneer%20of%20ultrafast%20magnetism%2C%20passed%20away%20on%20May%202%202018%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Mircea%22%2C%22lastName%22%3A%22Vomir%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Alexey%22%2C%22lastName%22%3A%22Kimel%22%7D%5D%2C%22abstractNote%22%3A%22%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1016%5C%2Fj.jmmm.2018.06.067%22%2C%22ISSN%22%3A%220304-8853%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1016%5C%2Fj.jmmm.2018.06.067%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22JZU5CN8N%22%5D%2C%22dateModified%22%3A%222019-01-15T16%3A08%3A49Z%22%7D%7D%2C%7B%22key%22%3A%227VGZCZRY%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Vomir%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A0%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EM.%20Vomir%2C%20M.%20Albrecht%2C%20G.%20Versini%2C%20J.-Y.%20Bigot%2C%20Single%20shot%20magnetization%20reversal%20of%20micron%20size%20magnetic%20domains%20in%20a%20Pt%5C%2FCo%5C%2FPt%20ferromagnetic%20stack%2C%20in%3A%202018%20CONFERENCE%20ON%20LASERS%20AND%20ELECTRO-OPTICS%20%28CLEO%29%2C%20IEEE%2C%202018.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22conferencePaper%22%2C%22title%22%3A%22Single%20shot%20magnetization%20reversal%20of%20micron%20size%20magnetic%20domains%20in%20a%20Pt%5C%2FCo%5C%2FPt%20ferromagnetic%20stack%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22M.%22%2C%22lastName%22%3A%22Vomir%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22M.%22%2C%22lastName%22%3A%22Albrecht%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22G.%22%2C%22lastName%22%3A%22Versini%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J.%20-Y.%22%2C%22lastName%22%3A%22Bigot%22%7D%5D%2C%22abstractNote%22%3A%22We%20show%20that%20the%20magnetization%20reversal%20of%20a%20Pt%5C%2FCo%5C%2FPt%20ferromagnetic%20stack%20can%20be%20triggered%20by%20a%20single%20femtosecond%20laser%20pulse%20if%20the%20switched%20spot%20is%20comparable%20to%20the%20size%20of%20the%20intrinsic%20magnetic%20domains.%22%2C%22date%22%3A%222018%22%2C%22proceedingsTitle%22%3A%222018%20CONFERENCE%20ON%20LASERS%20AND%20ELECTRO-OPTICS%20%28CLEO%29%22%2C%22conferenceName%22%3A%22Conference%20on%20Lasers%20and%20Electro-Optics%20%28CLEO%29%2C%2013-18%20mai%202018%2CSan%20Jose%2C%20CA%2C%20USA%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%22%22%2C%22ISBN%22%3A%22978-1-943580-42-2%22%2C%22url%22%3A%22%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%22JZU5CN8N%22%2C%22TBP4QFHK%22%5D%2C%22dateModified%22%3A%222023-06-15T14%3A51%3A21Z%22%7D%7D%2C%7B%22key%22%3A%22EM8UC4WZ%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Wells%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EC.%20Wells%2C%20O.%20Vollin-Bringel%2C%20V.%20Fiegel%2C%20S.%20Harlepp%2C%20B.%20Van%20der%20Schueren%2C%20S.%20B%26%23xE9%3Bgin-Colin%2C%20D.%20B%26%23xE9%3Bgin%2C%20D.%20Mertz%2C%20Engineering%20of%20Mesoporous%20Silica%20Coated%20Carbon-Based%20Materials%20Optimized%20for%20an%20Ultrahigh%20Doxorubicin%20Payload%20and%20a%20Drug%20Release%20Activated%20by%20pH%2C%20T%2C%20and%20NIR-light%2C%20Advanced%20Functional%20Materials%2028%20%282018%29%201706996.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1002%5C%2Fadfm.201706996%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1002%5C%2Fadfm.201706996%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22Engineering%20of%20Mesoporous%20Silica%20Coated%20Carbon-Based%20Materials%20Optimized%20for%20an%20Ultrahigh%20Doxorubicin%20Payload%20and%20a%20Drug%20Release%20Activated%20by%20pH%2C%20T%2C%20and%20NIR-light%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Connor%22%2C%22lastName%22%3A%22Wells%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ophelie%22%2C%22lastName%22%3A%22Vollin-Bringel%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Vincent%22%2C%22lastName%22%3A%22Fiegel%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sebastien%22%2C%22lastName%22%3A%22Harlepp%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Benoit%22%2C%22lastName%22%3A%22Van%20der%20Schueren%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Sylvie%22%2C%22lastName%22%3A%22B%5Cu00e9gin-Colin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Dominique%22%2C%22lastName%22%3A%22B%5Cu00e9gin%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Damien%22%2C%22lastName%22%3A%22Mertz%22%7D%5D%2C%22abstractNote%22%3A%22Among%20the%20challenges%20in%20nanomedicine%2C%20engineering%20nanomaterials%20able%20to%20combine%20imaging%20and%20multitherapies%20is%20hugely%20needed%20to%20address%20issues%20of%20a%20personalized%20treatment.%20In%20that%20context%2C%20a%20novel%20class%20of%20drug%20releasing%20and%20remotely%20activated%20nanocomposites%20based%20on%20carbon-based%20materials%20coated%20with%20mesoporous%20silica%20%28MS%29%20and%20loaded%20with%20an%20outstanding%20level%20of%20the%20antitumoral%20drug%20doxorubicin%20%28DOX%29%20is%20designed.%20First%2C%20carbon%20nanotubes%20%28CNTs%29%20and%20graphene%20sheets%20%28called%20%5Cu201cfew-layer%20graphene%5Cu201d%20FLG%29%20are%20processed%20to%20afford%20a%20distribution%20size%20that%20is%20more%20suitable%20for%20nanomedicine%20applications.%20Then%2C%20the%20controlled%20coating%20of%20MS%20shells%20having%20a%20thickness%20tailored%20with%20the%20sol-gel%20parameters%20%28amount%20of%20precursor%2C%20sol-gel%20time%29%20around%20the%20sliced%20CNTs%20and%20exfoliated%20FLGs%20is%20reported.%20Furthermore%2C%20the%20drug%20loading%20in%20such%20mesoporous%20nanocomposites%20is%20investigated%20and%20the%20surface%20modification%20with%20an%20aminopropyltriethoxysilane%20%28APTS%29%20coating%20leading%20to%20a%20controlled%20polysiloxane%20layer%20provides%20an%20ultrahigh%20payload%20of%20DOX%20%28up%20to%20several%20folds%20the%20mass%20of%20the%20initial%20composites%29.%20Such%20new%20CNT-based%20nanocomposites%20are%20demonstrated%20to%20release%20DOX%20at%20low%20acidic%20pH%2C%20high%20temperature%20%28T%29%2C%20and%20remotely%20when%20they%20are%20excited%20by%20near%20infrared%20%28NIR%29%20light.%20Such%20nanoconstructs%20may%20find%20applications%20as%20components%20of%20innovative%20biomedical%20scaffolds%20for%20phototherapy%20combined%20with%20drug%20delivery.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1002%5C%2Fadfm.201706996%22%2C%22ISSN%22%3A%221616-301X%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1002%5C%2Fadfm.201706996%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%2C%22CF4ZI7HM%22%2C%22UBUT97QT%22%5D%2C%22dateModified%22%3A%222022-02-09T16%3A57%3A30Z%22%7D%7D%2C%7B%22key%22%3A%22GIAIJHS2%22%2C%22library%22%3A%7B%22id%22%3A1839302%7D%2C%22meta%22%3A%7B%22creatorSummary%22%3A%22Zvereva%20et%20al.%22%2C%22parsedDate%22%3A%222018%22%2C%22numChildren%22%3A1%7D%2C%22bib%22%3A%22%3Cdiv%20class%3D%5C%22csl-bib-body%5C%22%20style%3D%5C%22line-height%3A%201.35%3B%20%5C%22%3E%5Cn%20%20%3Cdiv%20class%3D%5C%22csl-entry%5C%22%20style%3D%5C%22clear%3A%20left%3B%20%5C%22%3E%5Cn%20%20%20%20%3Cdiv%20class%3D%5C%22csl-left-margin%5C%22%20style%3D%5C%22float%3A%20left%3B%20padding-right%3A%200.5em%3B%20text-align%3A%20right%3B%20width%3A%201em%3B%5C%22%3E%5B1%5D%3C%5C%2Fdiv%3E%3Cdiv%20class%3D%5C%22csl-right-inline%5C%22%20style%3D%5C%22margin%3A%200%20.4em%200%201.5em%3B%5C%22%3EE.%20Zvereva%2C%20J.%20Segarra-Marti%2C%20M.%20Marazzi%2C%20J.%20Brazard%2C%20A.%20Nenov%2C%20O.%20Weingart%2C%20J.%20L%26%23xE9%3Bonard%2C%20M.%20Garavelli%2C%20I.%20Rivalta%2C%20E.%20Dumont%2C%20X.%20Assfeld%2C%20S.%20Haacke%2C%20A.%20Monari%2C%20The%20effect%20of%20solvent%20relaxation%20in%20the%20ultrafast%20time-resolved%20spectroscopy%20of%20solvated%20benzophenone%2C%20Photochemical%20%26amp%3B%20Photobiological%20Sciences%2017%20%282018%29%20323%26%23x2013%3B331.%20%3Ca%20class%3D%27zp-DOIURL%27%20href%3D%27https%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc7pp00439g%27%3Ehttps%3A%5C%2F%5C%2Fdoi.org%5C%2F10.1039%5C%2Fc7pp00439g%3C%5C%2Fa%3E.%3C%5C%2Fdiv%3E%5Cn%20%20%3C%5C%2Fdiv%3E%5Cn%3C%5C%2Fdiv%3E%22%2C%22data%22%3A%7B%22itemType%22%3A%22journalArticle%22%2C%22title%22%3A%22The%20effect%20of%20solvent%20relaxation%20in%20the%20ultrafast%20time-resolved%20spectroscopy%20of%20solvated%20benzophenone%22%2C%22creators%22%3A%5B%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Elena%22%2C%22lastName%22%3A%22Zvereva%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Javier%22%2C%22lastName%22%3A%22Segarra-Marti%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marco%22%2C%22lastName%22%3A%22Marazzi%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Johanna%22%2C%22lastName%22%3A%22Brazard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Artur%22%2C%22lastName%22%3A%22Nenov%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Oliver%22%2C%22lastName%22%3A%22Weingart%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22J%5Cu00e9r%5Cu00e9mie%22%2C%22lastName%22%3A%22L%5Cu00e9onard%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Marco%22%2C%22lastName%22%3A%22Garavelli%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Ivan%22%2C%22lastName%22%3A%22Rivalta%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Elise%22%2C%22lastName%22%3A%22Dumont%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Xavier%22%2C%22lastName%22%3A%22Assfeld%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Stefan%22%2C%22lastName%22%3A%22Haacke%22%7D%2C%7B%22creatorType%22%3A%22author%22%2C%22firstName%22%3A%22Antonio%22%2C%22lastName%22%3A%22Monari%22%7D%5D%2C%22abstractNote%22%3A%22Benzophenone%20%28BP%29%20despite%20its%20relatively%20simple%20molecular%20structure%20is%20a%20paradigmatic%20sensitizer%2C%20featuring%20both%20photocatalytic%20and%20photobiological%20effects%20due%20to%20its%20rather%20complex%20photophysical%20properties.%20In%20this%20contribution%20we%20report%20an%20original%20theoretical%20approach%20to%20model%20realistic%2C%20ultra-fast%20spectroscopy%20data%2C%20which%20requires%20describing%20intra-and%20intermolecular%20energy%20and%20structural%20relaxation.%20In%20particular%20we%20explicitly%20simulate%20time-resolved%20pump-probe%20spectra%20using%20a%20combination%20of%20state-of-the%20art%20hybrid%20quantum%20mechanics%5C%2Fmolecular%20mechanics%20dynamics%20to%20treat%20relaxation%20and%20vibrational%20effects.%20The%20comparison%20with%20experimental%20transient%20absorption%20data%20demonstrates%20the%20efficiency%20and%20accuracy%20of%20our%20approach.%20Furthermore%20the%20explicit%20inclusion%20of%20the%20solvent%2C%20water%20for%20simulation%20and%20methanol%20for%20experiment%2C%20allows%20us%2C%20despite%20the%20inherent%20different%20behavior%20of%20the%20two%2C%20to%20underline%20the%20role%20played%20by%20the%20H-bonding%20relaxation%20in%20the%20first%20hundreds%20of%20femtoseconds%20after%20optical%20excitation.%20Finally%20we%20predict%20for%20the%20first%20time%20the%20two-dimensional%20electronic%20spectrum%20%282DES%29%20of%20BP%20taking%20into%20account%20the%20vibrational%20effects%20and%20hence%20modelling%20partially%20symmetric%20and%20asymmetric%20ultrafast%20broadening.%22%2C%22date%22%3A%222018%22%2C%22language%22%3A%22English%22%2C%22DOI%22%3A%2210.1039%5C%2Fc7pp00439g%22%2C%22ISSN%22%3A%221474-905X%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fdx.doi.org%5C%2F10.1039%5C%2Fc7pp00439g%22%2C%22collections%22%3A%5B%22CHW2VGSR%22%2C%2295EJ8IDX%22%5D%2C%22dateModified%22%3A%222018-11-07T16%3A04%3A54Z%22%7D%7D%5D%7D
[1]
D. Agathangelou, Y. Orozco-Gonzalez, M. del Carmen Marin, P.P. Roy, J. Brazard, H. Kandori, K.-H. Jung, J. Léonard, T. Buckup, N. Ferre, M. Olivucci, S. Haacke, Effect of point mutations on the ultrafast photo-isomerization of Anabaena sensory rhodopsin, in: Faraday Discussions, 2018: pp. 55–75. https://doi.org/10.1039/c7fd00200a.
[1]
M. Allais, D. Mailley, P. Hébraud, D. Ihiawakrim, V. Ball, F. Meyer, A. Hebraud, G. Schlatter, Polymer-free etectrospinning of tannic acid and cross-Linking in water for hybrid supramotecular nanofibres, Nanoscale 10 (2018) 9164–9173. https://doi.org/10.1039/c8nr01067f.
[1]
B. Azeredo, A. Carton, C. Leuvrey, C. Kiefer, D. Ihawakrim, S. Zafairatos, M. Gallart, P. Gilliot, B.P. Pichon, Synergistic photo optical and magnetic properties of a hybrid nanocomposite consisting of a zinc oxide nanorod array decorated with iron oxide nanoparticles, Journal of Materials Chemistry C 6 (2018) 10502–10512. https://doi.org/10.1039/c8tc02680g.
[1]
V. Bhat, R. Cogdell, C.E. Crespo-Hernández, A. Datta, A. De, S. Haacke, J. Helliwell, R. Improta, J. Joseph, T. Karsili, B. Kohler, R. Krishnan, M. L, F. Lewis, I. Mandal, D. Markovitsi, P.P. Mishra, S. Paul, G. Periyasamy, P.I. Pradeepkumar, P. Roy Chowdhury, M. Sarangi, D. Sasikumar, I. Schapiro, G.F.X. Schertler, I. Schlichting, J. Segarra-Martí, R. Swaminathan, V. V, R. van Grondelle, R. Varghese, R. Venkatramani, Photocrosslinking between nucleic acids and proteins: general discussion, in: Faraday Discussions, 2018: pp. 283–306. https://doi.org/10.1039/C8FD90005A.
[1]
T. Buckup, J. Léonard, Multidimensional Vibrational Coherence Spectroscopy, Topics in Current Chemistry 376 (2018) 35. https://doi.org/10.1007/s41061-018-0213-4.
[1]
E. Catal, E. Keles, N. Seferoglu, S. Achelle, A. Barsella, F.R. le Guen, Z. Seferoglu, Triphenylamine-based allylidenemalononitrile chromophores: synthesis, and photophysical and second-order nonlinear optical properties, New Journal of Chemistry 42 (2018) 15052–15060. https://doi.org/10.1039/c8nj02794c.
[1]
A. Chandra, R. Cogdell, C.E. Crespo-Hernández, A. Datta, A. Giussani, S. Haacke, J. Helliwell, R. Improta, R.S. Jayasree, M. Jones, T. Karsili, B. Kohler, M. L, I. Mandal, D. Markovitsi, H. Medhi, P.P. Mishra, P.I. Pradeepkumar, P. Roy Chowdhury, M. Sarangi, I. Schapiro, I. Schlichting, J. Segarra-Martí, A. Sharma, V. V, R. van Grondelle, A. Watts, Light induced damage and repair in nucleic acids and proteins: general discussion, in: Faraday Discussions, 2018: pp. 389–408. https://doi.org/10.1039/C8FD90006J.
[1]
A. Chandra, A. Chattopadhyay, R. Cogdell, A. Datta, A. De, S. Dhamija, M. Golla, S. Haacke, M. Hariharan, J. Helliwell, R. Improta, R.S. Jayasree, M. Jones, J. Joseph, T. Karsili, B. Kohler, R. Krishnan, I. Mandal, D. Markovitsi, H. Medhi, P.P. Mishra, P. Roy Chowdhury, M. Sarangi, I. Schlichting, J. Seddon, A. Sharma, A. Siriki, R. Swaminathan, R. van Grondelle, R. Varghese, R. Venkatramani, A. Watts, Bionanophotonics: general discussion, in: Faraday Discussions, 2018: pp. 491–512. https://doi.org/10.1039/C8FD90007H.
[1]
L. Charbonniere, S. Haacke, 28th International Conference on Photochemistry (ICP 2017): an introduction by the Guest Editors, Photochemical & Photobiological Sciences 17 (2018) 1280–1281. https://doi.org/10.1039/c8pp90040j.
[1]
A. Chattopadhyay, R. Cogdell, C.E. Crespo-Hernández, A. Datta, A. De, S. Haacke, M. Hariharan, J. Helliwell, A. Hughes, R. Improta, M. Jones, J. Joseph, T. Karsili, B. Kohler, R. Krishnan, A. Kuriakose, M. L, D. Markovitsi, H. Medhi, G. Periyasamy, P.I. Pradeepkumar, P. Roy Chowdhury, M. Sarangi, I. Schapiro, G.F.X. Schertler, I. Schlichting, J. Segarra-Martí, R. Swaminathan, V. V, R. van Grondelle, R.K. Venkatraman, R. Venkatramani, A. Watts, Light induced charge and energy transport in nucleic acids and proteins: general discussion, in: Faraday Discussions, 2018: pp. 153–180. https://doi.org/10.1039/C8FD90004C.
[1]
M. Deb, P. Molho, B. Barbara, J.-Y. Bigot, Controlling laser-induced magnetization reversal dynamics in a rare-earth iron garnet across the magnetization compensation point, Physical Review B 97 (2018) 134419. https://doi.org/10.1103/PhysRevB.97.134419.
[1]
B. Doppagne, M.C. Chong, H. Bulou, A. Boeglin, F. Scheurer, G. Schull, Electrofluorochromism at the single-molecule level, Science 361 (2018) 251–254. https://doi.org/10.1126/science.aat1603.
[1]
T. Duchanois, L. Liu, M. Pastore, A. Monari, C. Cebrián, Y. Trolez, M. Darari, K. Magra, A. Francés-Monerris, E. Domenichini, M. Beley, X. Assfeld, S. Haacke, P.C. Gros, NHC-Based Iron Sensitizers for DSSCs, Inorganics 6 (2018) 63. https://doi.org/10.3390/inorganics6020063.
[1]
M. Dufour, M. Valdes, R. Lazauskas, P.-A. Hervieux, Antihydrogen formation via antiproton scattering on positronium between the e(-) + (H)over-bar (n=2) and e(-) + (H)over-bar (n=3) thresholds, in: Hyperfine Interactions, 2018: p. 41. https://doi.org/10.1007/s10751-018-1515-1.
[1]
R.J. Durand, S. Gauthier, S. Achelle, T. Groizard, S. Kahlal, J.-Y. Saillard, A. Barsella, N. Le Poul, F.R. Le Guen, Push-pull D-pi-Ru-pi-A chromophores: synthesis and electrochemical, photophysical and second-order nonlinear optical properties, Dalton Transactions 47 (2018) 3965–3975. https://doi.org/10.1039/c8dt00093j.
[1]
R.J. Durand, S. Achelle, S. Gauthier, N. Cabon, M. Ducamp, S. Kahlal, J.-Y. Saillard, A. Barsella, F. Robin-Le Guen, Incorporation of a ferrocene unit in the pi-conjugated structure of donor-linker-acceptor (D-pi-A) chromophores for nonlinear optics (NLO), Dyes and Pigments 155 (2018) 68–74. https://doi.org/10.1016/j.dyepig.2018.03.029.
[1]
Q. Evrard, C. Leuvrey, P. Farger, E. Delahaye, P. Rabu, G. Taupier, K.D. Dorkenoo, J.-M. Rueff, N. Barrier, O. Perez, G. Rogez, Noncentrosymmetric Cu(II) Layered Hydroxide: Synthesis, Crystal Structure, Nonlinear Optical, and Magnetic Properties of Cu-2(OH)(3)(C12H25SO4), Crystal Growth & Design 18 (2018) 1809–1817. https://doi.org/10.1021/acs.cgd.7601692.
[1]
P. Farger, C. Leuvrey, M. Gallart, P. Gilliot, G. Rogez, J. Rocha, D. Ananias, P. Rabu, E. Delahaye, Magnetic and luminescent coordination networks based on imidazolium salts and lanthanides for sensitive ratiometric thermometry, Beilstein Journal of Nanotechnology 9 (2018) 2775–2787. https://doi.org/10.3762/bjnano.9.259.
[1]
V. Fiegel, S. Harlepp, S. Bégin-Colin, D. Bégin, D. Mertz, Design of Protein-Coated Carbon Nanotubes Loaded with Hydrophobic Drugs through Sacrificial Templating of Mesoporous Silica Shells, Chemistry-a European Journal 24 (2018) 4662–4670. https://doi.org/10.1002/chem.201705845.
[1]
G. Follain, N. Osmani, A.S. Azevedo, G. Allio, L. Mercier, M.A. Karreman, G. Solecki, M.J.G. Leon, O. Lefebvre, N. Fekonja, C. Hille, V. Chabannes, G. Dolle, T. Metivet, F.D. Hovsepian, C. Prudhomme, A. Pichot, N. Paul, R. Carapito, S. Bahram, B. Ruthensteiner, A. Kemmling, S. Siemonsen, T. Schneider, J. Fiehler, M. Glatzel, F. Winkler, Y. Schwab, K. Pantel, S. Harlepp, J.G. Goetz, Hemodynamic Forces Tune the Arrest, Adhesion, and Extravasation of Circulating Tumor Cells, Developmental Cell 45 (2018) 33+. https://doi.org/10.1016/j.devcel.2018.02.015.
[1]
G. Follain, N. Osmani, C. Fuchs, G. Allio, S. Harlepp, J. Goetz, Using the Zebrafish Embryo to Dissect the Early Steps of the Metastasis Cascade, in: Methods in Molecular Biology (Clifton, N.J.), 2018: pp. 195–211. http://dx.doi.org/10.1007/978-1-4939-7701-7_15.
[1]
A. Frances-Monerris, K. Magra, M. Darari, C. Cebrian, M. Beley, E. Domenichini, S. Haacke, M. Pastore, X. Assfeld, P.C. Gros, A. Monari, Synthesis and Computational Study of a Pyridylcarbene Fe(II) Complex: Unexpected Effects of fac/mer Isomerism in Metal-to-Ligand Triplet Potential Energy Surfaces, Inorganic Chemistry 57 (2018) 10431–10441. https://doi.org/10.1021/acs.inorgchem.8b01695.
[1]
M. Gallart, T. Cottineau, B. Hönerlage, V. Keller, N. Keller, P. Gilliot, Temperature dependent photoluminescence of anatase and rutile TiO2 single crystals: Polaron and self-trapped exciton formation, Journal of Applied Physics 124 (2018) 133104. https://doi.org/10.1063/1.5043144.
[1]
C. García-Iriepa, P. Gosset, R. Berraud-Pache, M. Zemmouche, G. Taupier, K.D. Dorkenoo, P. Didier, J. Léonard, N. Ferré, I. Navizet, Simulation and Analysis of the Spectroscopic Properties of Oxyluciferin and Its Analogues in Water, Journal of Chemical Theory and Computation 14 (2018) 2117–2126. https://doi.org/10.1021/acs.jctc.7b01240.
[1]
S. Gauthier, A. Porter, S. Achelle, T. Roisnel, V. Dorcet, A. Barsella, N. Le Poul, P.G. Level, D. Jacquemin, F. Robin-Le Guen, Mono- and Diplatinum Polyynediyl Complexes as Potential Push-Pull Chromophores: Synthesis, Characterization, TD-DFT Modeling, and Photophysical and NLO Properties, Organometallics 37 (2018) 2232–2244. https://doi.org/10.1021/acs.organoment.8b00223.
[1]
N. Genevaz, P. Chavez, V. Untilova, A. Boeglin, C. Bailly, L. Karmazin, L. Biniek, Tuning crystallochromism in diketopyrrolopyrrole-co-thieno[3,2-b]thiophene derivatives by the architecture of their alkyl side chains, Journal of Materials Chemistry C 6 (2018) 9140–9151. https://doi.org/10.1039/c8tc02022a.
[1]
M. Gueye, M. Manathunga, D. Agathangelou, Y. Orozco, M. Paolino, S. Fusi, S. Haacke, M. Olivucci, J. Léonard, Engineering the vibrational coherence of vision into a synthetic molecular device, Nature Communications 9 (2018) 313. https://doi.org/10.1038/s41467-017-02668-w.
[1]
B. Honerlage, I. Pelant, B. Honerlage, I. Pelant, Symmetry and Symmetry-Breaking in Semiconductors Fine Structure of Exciton States, 2018. 10.1007/978-3-319-94235-3.
[1]
J. Hurst, P.-A. Hervieux, G. Manfredi, Spin current generation by ultrafast laser pulses in ferromagnetic nickel films, Physical Review B 97 (2018) 014424. https://doi.org/10.1103/PhysRevB.97.014424.
[1]
J. Hurst, P.M. Oppeneer, G. Manfredi, P.-A. Hervieux, Magnetic moment generation in small gold nanoparticles via the plasmonic inverse Faraday effect, Physical Review B 98 (2018) 134439. https://doi.org/10.1103/PhysRevB.98.134439.
[1]
M. Maiuri, J. Brazard, Electronic Couplings in (Bio-) Chemical Processes, Topics in Current Chemistry 376 (2018) 10. https://doi.org/10.1007/s41061-017-0180-1.
[1]
S. Makarchuk, N. Beyer, C. Gaiddon, W. Grange, P. Hébraud, Holographic Traction Force Microscopy, Scientific Reports 8 (2018) 3038. https://doi.org/10.1038/s41598-018-21206-2.
[1]
M. Manathunga, X. Yang, M. Olivucci, Electronic State Mixing Controls the Photoreactivity of a Rhodopsin with all-trans Chromophore Analogues, Journal of Physical Chemistry Letters 9 (2018) 6350–6355. https://doi.org/10.1021/acs.jpclett.8b02550.
[1]
G. Manfredi, Preface to Special Topic: Plasmonics and solid state plasmas, Physics of Plasmas 25 (2018) 031701. https://doi.org/10.1063/1.5026653.
[1]
G. Manfredi, J.-L. Rouet, B. Miller, G. Chardin, Cosmological structure formation with negative mass, Physical Review D 98 (2018) 023514. https://doi.org/10.1103/PhysRevD.98.023514.
[1]
G. Manfredi, J. Hurst, P.-A. Hervieux, Ultrafast spin current generation in ferromagnetic thin films, in: Drouhin, HJ and Wegrowe, JE and Razeghi, M and Jaffres, H (Ed.), SPINTRONICS XI, SPIE-INT SOC OPTICAL ENGINEERING, 2018. https://doi.org/10.1117/12.2319953.
[1]
G. Manfredi, P.-A. Hervieux, F. Tanjia, Quantum hydrodynamics for nanoplasmonics, in: Tsai, DP and Tanaka, T (Ed.), Plasmonics: Design, Materials, Fabrication, Characterization, and Applications XVI, SPIE-INT SOC OPTICAL ENGINEERING, 2018. https://doi.org/10.1117/12.2320737.
[1]
L. Mouawad, P.-A. Hervieux, C. Dal Cappello, J. Pansanel, V. Robert, Z. El Bitar, Triple differential cross sections for the ionization of tetrahydrofuran by electron impact, Journal of Physics B-Atomic Molecular and Optical Physics 51 (2018) 175201. https://doi.org/10.1088/1361-6455/aad6cf.
[1]
M. Nassar, A. Gromer, F. Thalmann, P. Hébraud, Y. Holl, Velocity of lateral drying fronts in film formation by drying of colloidal dispersions. A 2D simulation, Journal of Colloid and Interface Science 511 (2018) 424–433. https://doi.org/10.1016/j.jcis.2017.10.010.
[1]
A. Quattropani, A.S. Makhort, M.V. Rastei, G. Versini, G. Schmerber, S. Barre, A. Dinia, A. Slaoui, J.-L. Rehspringer, T. Fix, S. Colis, B. Kundys, Tuning photovoltaic response in Bi2FeCrO6 films by ferroelectric poling, Nanoscale 10 (2018) 13761–13766. https://doi.org/10.1039/c8nr03137a.
[1]
A. Quattropani, D. Stoeffler, T. Fix, G. Schmerber, M. Lenertz, G. Versini, J.L. Rehspringer, A. Slaoui, A. Dinia, S. Cois, Band-Gap Tuning in Ferroelectric Bi2FeCrO6 Double Perovskite Thin Films, Journal of Physical Chemistry C 122 (2018) 1070–1077. https://doi.org/10.1021/acs.jpcc.7b10622.
[1]
J. Segarra-Marti, E. Zvereva, M. Marazzi, J. Brazard, E. Dumont, X. Assfeld, S. Haacke, M. Garavelli, A. Monari, J. Léonard, I. Rivalta, Resolving the Singlet Excited State Manifold of Benzophenone by First-Principles Simulations and Ultrafast Spectroscopy, Journal of Chemical Theory and Computation 14 (2018) 2570–2585. https://doi.org/10.1021/acs.jctc.7b01208.
[1]
A.I. Skilitsi, D. Agathangelou, I. Shulov, J. Conyard, S. Haacke, Y. Mely, A. Klymchenko, J. Léonard, Ultrafast photophysics of the environment-sensitive 4[prime or minute]-methoxy-3-hydroxyflavone fluorescent dye, Physical Chemistry Chemical Physics 20 (2018) 7885–7895. https://doi.org/10.1039/C7CP08584B.
[1]
F. Tanjia, J. Hurst, P.-A. Hervieux, G. Manfredi, Plasmonic breathing modes in C-60 molecules: A quantum hydrodynamic approach, Physical Review A 98 (2018) 043430. https://doi.org/10.1103/PhysRevA.98.043430.
[1]
M. Valdes, M. Dufour, R. Lazauskas, P.-A. Hervieux, Ab initio calculations of scattering cross sections of the three-body system ((p)over-bar,e(+),e(-)) between the e(-) + (H)over-bar(n=2) and e(-) + (H)over-bar(n=3) thresholds, Physical Review A 97 (2018) 012709. https://doi.org/10.1103/PhysRevA.97.012709.
[1]
M. Vomir, A. Kimel, Jean-Yves Bigot, a pioneer of ultrafast magnetism, passed away on May 2 2018, Journal of Magnetism and Magnetic Materials 467 (2018) A1. https://doi.org/10.1016/j.jmmm.2018.06.067.
[1]
M. Vomir, M. Albrecht, G. Versini, J.-Y. Bigot, Single shot magnetization reversal of micron size magnetic domains in a Pt/Co/Pt ferromagnetic stack, in: 2018 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), IEEE, 2018.
[1]
C. Wells, O. Vollin-Bringel, V. Fiegel, S. Harlepp, B. Van der Schueren, S. Bégin-Colin, D. Bégin, D. Mertz, Engineering of Mesoporous Silica Coated Carbon-Based Materials Optimized for an Ultrahigh Doxorubicin Payload and a Drug Release Activated by pH, T, and NIR-light, Advanced Functional Materials 28 (2018) 1706996. https://doi.org/10.1002/adfm.201706996.
[1]
E. Zvereva, J. Segarra-Marti, M. Marazzi, J. Brazard, A. Nenov, O. Weingart, J. Léonard, M. Garavelli, I. Rivalta, E. Dumont, X. Assfeld, S. Haacke, A. Monari, The effect of solvent relaxation in the ultrafast time-resolved spectroscopy of solvated benzophenone, Photochemical & Photobiological Sciences 17 (2018) 323–331. https://doi.org/10.1039/c7pp00439g.