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偶极发色团的(多)分支对光物理性质和双光子吸收的影响。

Effects of (multi)branching of dipolar chromophores on photophysical properties and two-photon absorption.

作者信息

Katan Claudine, Terenziani Francesca, Mongin Olivier, Werts Martinus H V, Porrès Laurent, Pons Thomas, Mertz Jerome, Tretiak Sergei, Blanchard-Desce Mireille

机构信息

Synthèse et ElectroSynthèse Organiques (CNRS, UMR 6510), Université de Rennes 1, Institut de Chimie, Campus Scientifique de Beaulieu, Bât 10A, F-35042 Rennes Cedex, France.

出版信息

J Phys Chem A. 2005 Apr 7;109(13):3024-37. doi: 10.1021/jp044193e.

Abstract

To investigate the effect of branching on linear and nonlinear optical properties, a specific series of chromophores, epitome of (multi)branched dipoles, has been thoroughly explored by a combined theoretical and experimental approach. Excited-state structure calculations based on quantum-chemical techniques (time-dependent density functional theory) as well as a Frenkel exciton model nicely complement experimental photoluminescence and one- and two-photon absorption findings and contribute to their interpretation. This allowed us to get a deep insight into the nature of fundamental excited-state dynamics and the nonlinear optical (NLO) response involved. Both experiment and theory reveal that a multidimensional intramolecular charge transfer takes place from the donating moiety to the periphery of the branched molecules upon excitation, while fluorescence stems from an excited state localized on one of the dipolar branches. Branching is also observed to lead to cooperative enhancement of two-photon absorption (TPA) while maintaining high fluorescence quantum yield, thanks to localization of the emitting state. The comparison between results obtained in the Frenkel exciton scheme and ab initio results suggests the coherent coupling between branches as one of the possible mechanisms for the observed enhancement. New strategies for the rational design of NLO molecular assemblies are thus inferred on the basis of the acquired insights.

摘要

为了研究支化对线性和非线性光学性质的影响,我们采用理论与实验相结合的方法,对一系列特定的发色团(多支化偶极子的典型代表)进行了深入研究。基于量子化学技术(含时密度泛函理论)的激发态结构计算以及弗伦克尔激子模型,很好地补充了实验光致发光以及单光子和双光子吸收的研究结果,并有助于对这些结果进行解释。这使我们能够深入了解基本激发态动力学的本质以及所涉及的非线性光学(NLO)响应。实验和理论均表明,激发时分子内会发生从供体部分到支化分子外围的多维电荷转移,而荧光则源于位于偶极分支之一上的激发态。由于发射态的局域化,还观察到支化会导致双光子吸收(TPA)的协同增强,同时保持高荧光量子产率。弗伦克尔激子方案得到的结果与从头算结果之间的比较表明,分支之间的相干耦合是观察到增强现象的可能机制之一。因此,基于所获得的见解推断出了用于NLO分子组装体合理设计的新策略。

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