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刚性棒状共轭聚合物中的激子迁移:一种改进的福斯特模型。

Exciton migration in rigid-rod conjugated polymers: an improved Förster model.

作者信息

Hennebicq Emmanuelle, Pourtois Geoffrey, Scholes Gregory D, Herz Laura M, Russell David M, Silva Carlos, Setayesh Sepas, Grimsdale Andrew C, Müllen Klaus, Brédas Jean-Luc, Beljonne David

机构信息

Chemistry of Novel Materials, University of Mons-Hainaut, Place du Parc 20, B-7000 Mons, Belgium.

出版信息

J Am Chem Soc. 2005 Apr 6;127(13):4744-62. doi: 10.1021/ja0488784.

Abstract

The dynamics of interchain and intrachain excitation energy transfer taking place in a polyindenofluorene endcapped with perylene derivatives is explored by means of ultrafast spectroscopy combined with correlated quantum-chemical calculations. The experimental data indicate faster exciton migration in films with respect to solution as a result of the emergence of efficient channels involving hopping between chains in close contact. These findings are supported by theoretical simulations based on an improved Forster model. Within this model, the rates are expressed according to the Fermi golden rule on the basis of (i) electronic couplings that take account of the detailed shape of the excited-state wave functions (through the use of a multicentric monopole expansion) and (ii) spectral overlap factors computed from the simulated acceptor absorption and donor emission spectra with explicit coupling to vibrations (considered within a displaced harmonic oscillator model); inhomogeneity is taken into account by assuming a distribution of chromophores with different conjugation lengths. The calculations predict faster intermolecular energy transfer as a result of larger electronic matrix elements and suggest a two-step mechanism for intrachain energy transfer with exciton hopping along the polymer backbone as the limiting step. Injecting the calculated hopping rates into a set of master equations allows the modeling of the dynamics of exciton transport along the polyindenofluorene chains and yields ensemble-averaged energy-transfer rates in good agreement with experiment.

摘要

通过超快光谱结合相关量子化学计算,研究了苝衍生物封端的聚茚并芴中发生的链间和链内激发能转移动力学。实验数据表明,由于出现了涉及紧密接触链间跳跃的有效通道,薄膜中的激子迁移比溶液中更快。这些发现得到了基于改进的福斯特模型的理论模拟的支持。在该模型中,速率根据费米黄金规则表示,基于:(i) 考虑激发态波函数详细形状的电子耦合(通过使用多中心单极展开),以及 (ii) 从模拟的受体吸收和供体发射光谱计算并明确耦合到振动的光谱重叠因子(在位移谐振子模型中考虑);通过假设具有不同共轭长度的发色团分布来考虑不均匀性。计算预测由于更大的电子矩阵元,分子间能量转移更快,并提出链内能量转移的两步机制,其中沿着聚合物主链的激子跳跃是限制步骤。将计算出的跳跃速率代入一组主方程,可以对沿聚茚并芴链的激子传输动力学进行建模,并产生与实验非常吻合的系综平均能量转移速率。

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