Strong Steven E, Hestand Nicholas J
Pritzker School of Molecular Engineering, The University of Chicago, Chicago, Illinois 60637, USA.
J Chem Phys. 2020 Sep 28;153(12):124113. doi: 10.1063/5.0021731.
Electron-phonon coupling plays a central role in the transport properties and photophysics of organic crystals. Successful models describing charge- and energy-transport in these systems routinely include these effects. Most models for describing photophysics, on the other hand, only incorporate local electron-phonon coupling to intramolecular vibrational modes, while nonlocal electron-phonon coupling is neglected. One might expect nonlocal coupling to have an important effect on the photophysics of organic crystals because it gives rise to large fluctuation in the charge-transfer couplings, and charge-transfer couplings play an important role in the spectroscopy of many organic crystals. Here, we study the effects of nonlocal coupling on the absorption spectrum of crystalline pentacene and 7,8,15,16-tetraazaterrylene. To this end, we develop a new mixed quantum-classical approach for including nonlocal coupling into spectroscopic and transport models for organic crystals. Importantly, our approach does not assume that the nonlocal coupling is linear, in contrast to most modern charge-transport models. We find that the nonlocal coupling broadens the absorption spectrum non-uniformly across the absorption line shape. In pentacene, for example, our model predicts that the lower Davydov component broadens considerably more than the upper Davydov component, explaining the origin of this experimental observation for the first time. By studying a simple dimer model, we are able to attribute this selective broadening to correlations between the fluctuations of the charge-transfer couplings. Overall, our method incorporates nonlocal electron-phonon coupling into spectroscopic and transport models with computational efficiency, generalizability to a wide range of organic crystals, and without any assumption of linearity.
电子 - 声子耦合在有机晶体的输运性质和光物理过程中起着核心作用。描述这些系统中电荷和能量输运的成功模型通常会考虑这些效应。另一方面,大多数描述光物理的模型仅纳入了局域电子 - 声子与分子内振动模式的耦合,而非局域电子 - 声子耦合则被忽略。人们可能预期非局域耦合会对有机晶体的光物理产生重要影响,因为它会导致电荷转移耦合出现大幅波动,而电荷转移耦合在许多有机晶体的光谱学中起着重要作用。在此,我们研究非局域耦合对并五苯和7,8,15,16 - 四氮杂并四苯晶体吸收光谱的影响。为此,我们开发了一种新的混合量子 - 经典方法,将非局域耦合纳入有机晶体的光谱和输运模型。重要的是,与大多数现代电荷输运模型不同,我们的方法并不假定非局域耦合是线性的。我们发现非局域耦合会使吸收光谱在整个吸收线形上非均匀展宽。例如,在并五苯中,我们的模型预测较低的达维多夫分量展宽程度远大于较高的达维多夫分量,首次解释了这一实验观测结果的起源。通过研究一个简单的二聚体模型,我们能够将这种选择性展宽归因于电荷转移耦合波动之间的相关性。总体而言,我们的方法将非局域电子 - 声子耦合纳入光谱和输运模型,具有计算效率高、可广泛应用于多种有机晶体且无需任何线性假设的特点。