Schubert Alexander, Falge Mirjam, Kess Martin, Settels Volker, Lochbrunner Stefan, Strunz Walter T, Würthner Frank, Engels Bernd, Engel Volker
Institut für Physikalische und Theoretische Chemie, Universität Würzburg , Hubland Campus Nord, Emil-Fischer-Strasse 42, 97074 Würzburg, Germany.
J Phys Chem A. 2014 Feb 27;118(8):1403-12. doi: 10.1021/jp412166a. Epub 2014 Feb 11.
We present a model for the relaxation dynamics in perylene bisimide dimers, which is based on ab initio electronic structure and quantum dynamics calculations including effects of dissipation. The excited-state dynamics proceeds via a mixing of electronic states of local Frenkel and charge-transfer characters, which becomes effective upon a small distortion of the dimer geometry. In this way, it is possible to explain the fast depopulation of the photoexcited state, which we characterize by femtosecond transient absorption measurements. The combined theoretical and experimental analysis hints at a trapping mechanism, which involves nonadiabatic and dissipative dynamics in an excited-state vibronic manifold and provides an atomistic picture that might prove valuable for future design of photovoltaic materials.
我们提出了一种基于从头算电子结构和量子动力学计算(包括耗散效应)的苝二酰亚胺二聚体弛豫动力学模型。激发态动力学通过局部弗伦克尔和电荷转移特征的电子态混合进行,这种混合在二聚体几何结构发生小的畸变时变得有效。通过这种方式,可以解释光激发态的快速去激发过程,我们通过飞秒瞬态吸收测量对其进行了表征。理论与实验的联合分析暗示了一种俘获机制,该机制涉及激发态振子流形中的非绝热和耗散动力学,并提供了一种原子尺度的图像,这可能对未来光伏材料的设计具有重要价值。