Kundu Sohang, Makri Nancy
Department of Chemistry, University of Illinois, Urbana, Illinois 61801, USA.
Phys Chem Chem Phys. 2021 Jul 28;23(29):15503-15514. doi: 10.1039/d1cp02135d.
The process of excitation energy transfer (EET) in molecular aggregates is etched with the signatures of a multitude of electronic and vibrational time scales that often are extremely difficult to resolve. The effect of the motion associated with one molecular vibration on that of another is fundamental to the dynamics of EET. In this paper we present simple theoretical ideas along with fully quantum mechanical calculations to develop a comprehensive mechanistic picture of EET in terms of the time evolution of electronic-vibrational densities (EVD) in a perylene bisimide (PBI) dimer, where 28 intramolecular normal modes couple to the ground and excited electronic states of each molecule. The EVD motion exhibits a plethora of dynamical features, which impart physical justification for the composite effects observed in the EET dynamics. Weakly coupled vibrations lead to classical-like motion of the EVD center on each electronic state, while highly nontrivial EVD characteristics develop under moderate or strong exciton-vibration interaction, leading to the formation of split or crescent-shaped densities, as well as density retention that slows down energy transfer and creates new peaks in the electronic populations. Pronounced correlation effects are observed in two-mode projections of the EVD, as a consequence of indirect vibrational coupling between uncoupled normal modes induced by the electronic coupling. Such indirect coupling depends on the strength of exciton-vibration interactions as well as the frequency mismatch between the two modes and leaves nontrivial signatures in the electronic population dynamics. The collective effects of many vibrational modes cause a partial smearing of these features through dephasing.
分子聚集体中的激发能量转移(EET)过程刻有众多电子和振动时间尺度的特征,这些时间尺度往往极难分辨。一种分子振动的运动对另一种分子振动运动的影响是EET动力学的基础。在本文中,我们提出了简单的理论观点并进行了全量子力学计算,以便根据苝二酰亚胺(PBI)二聚体中电子 - 振动密度(EVD)的时间演化,构建一个关于EET的全面机理图景,其中28个分子内正常模式与每个分子的基态和激发电子态耦合。EVD运动展现出大量的动力学特征,这些特征为EET动力学中观察到的复合效应提供了物理依据。弱耦合振动导致EVD中心在每个电子态上呈现类似经典的运动,而在中等或强激子 - 振动相互作用下会出现高度非平凡的EVD特征,导致形成分裂或新月形密度,以及使能量转移减慢并在电子布居数中产生新峰值的密度保留现象。由于电子耦合诱导的非耦合正常模式之间的间接振动耦合,在EVD的双模投影中观察到明显的关联效应。这种间接耦合取决于激子 - 振动相互作用的强度以及两种模式之间的频率失配,并在电子布居数动力学中留下非平凡的特征。许多振动模式的集体效应通过退相作用使这些特征部分模糊。