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Simultaneous Control of Emission Localization and Two-Photon Absorption Efficiency in Dissymmetrical Chromophores

Authors :
Sergei Tretiak
Mireille Blanchard-Desce
Ekaterina Badaeva
Viatcheslav Jouikov
Claudine Katan
Olivier Mongin
Céline Le Droumaguet
Francesca Terenziani
Marina Charlot
Chimie et Photonique Moléculaires (CPM)
Université de Rennes (UR)-Centre National de la Recherche Scientifique (CNRS)
Molecular Materials for Advanced Applications (MMAA)
Università degli studi di Parma = University of Parma (UNIPR)-INSTM-UdR Parma
University of Washington [Seattle]
Los Alamos National Laboratory (LANL)
Theorical Division (LANL)
MBD and ST gratefully acknowledge CNRS for an invited research associate position to ST. MBD, CK and,FT acknowledge the Italo-French University and Egide for funding through the Galileo Project. This work was performed in part at the US Department of Energy, Center for Integrated Nanotechnologies (CINT), at Los Alamos National Laboratory (LANL) (Contract DE-AC52-06NA25396). MBD acknowledges financial support from DGA (Grant 00.34.070.00.470.75.653) and Rennes Métropole (equipment grant 'Allocation Spécifique d’Installation'). MC received fellowship from DGA. We acknowledge support of Center for Nonlinear Studies (CNLS) at LANL. FT acknowledges MIUR for funding through PRIN2006-031511. A portion of the calculations was funded by the 'Centre Informatique National de l'Enseignement Supérieur' (CINES-France).
Université de Rennes 1 (UR1)
Université de Rennes (UNIV-RENNES)-Université de Rennes (UNIV-RENNES)-Centre National de la Recherche Scientifique (CNRS)
University of Parma = Università degli studi di Parma [Parme, Italie]-INSTM-UdR Parma
Source :
Journal of Physical Chemistry B, Journal of Physical Chemistry B, 2010, 114 (9), pp.3152-3169. ⟨10.1021/jp911445m⟩, Journal of Physical Chemistry B, American Chemical Society, 2010, 114 (9), pp.3152-3169. ⟨10.1021/jp911445m⟩
Publication Year :
2010
Publisher :
American Chemical Society (ACS), 2010.

Abstract

C. K's secondary address for this work: CNRS UMR6082 FOTON, INSA de Rennes, 20 avenue des Buttes de Coësmes, CS 70839, 35708 RENNES cedex 7, FranceWe thank E. Leroux for technical assistance in the synthesis, S. Soualmi in electrochemical mesaurements and M. H. V. Werts for help in the TPEF measurements.; International audience; The aim of the present work is to demonstrate that combined spatial tuning of fluorescence and two-photon absorption (TPA) properties of multipolar chromophores can be achieved by introduction of slight electronic chemical dissymmetry. In that perspective, two model series of structurally related chromophores have been designed and investigated. One is based on rod-like quadrupolar chromophores bearing either two identical or different electron-donating (D) end groups and the other on three-branched octupolar chromophores built from a trigonal donating moiety bearing identical or different acceptor (A) peripheral groups. The influence of the electronic dissymmetry is investigated by combined experimental and theoretical studies of the linear and nonlinear optical properties of dissymmetrical chromophores compared to their symmetrical counterparts. In both types of systems (i.e., quadrupoles and octupoles), experiments and theory reveal that excitation is essentially delocalized and that excitation involves synchronized charge redistribution (i.e., concerted intramolecular charge transfer) between the different D and A moieties within the multipolar structure. In contrast, the emission stems only from a particular dipolar subunit bearing the strongest D or A moiety due to fast excitation localization after excitation, prior to emission. Hence, control of emission characteristics (polarization and emission spectrum), can be achieved, in addition to localization, by controlled introduction of electronic dissymmetry (i.e., replacement of one of the D or A end-groups by a slightly stronger D′ or A′ unit). Interestingly, slight dissymmetrical functionalization of both quadrupolar and octupolar compounds does not lead to significant loss in TPA responses and can even be beneficial due to the spectral broadening and peak position tuning that it allows. This study thus reveals an original molecular engineering route allowing TPA enhancement in multipolar structures, due to concerted core-to-periphery or periphery-to-core intramolecular charge redistribution upon excitation, while providing for control of emission localization. Such a route could be extended to more intricate (dendritic) and multipolar (3D) systems.

Details

ISSN :
15205207 and 15206106
Volume :
114
Database :
OpenAIRE
Journal :
The Journal of Physical Chemistry B
Accession number :
edsair.doi.dedup.....27a179112434a1603ceecf241a0fbb02