Department of Chemistry, Iowa State University, Ames, Iowa 50011, United States.
Health Sciences Platform, Tianjin University, 92 Weijin Road, Nankai District, Tianjin 3000072, P. R. China.
J Chem Theory Comput. 2020 Jul 14;16(7):4521-4532. doi: 10.1021/acs.jctc.0c00274. Epub 2020 Jun 26.
An enhanced generalized analytic approach for determination of multidimensional Franck-Condon Factors (FCFs) enables efficient computational prediction of photoelectron spectra for large-dimensional systems. Incorporation of the automated assignment of Cartesian coordinate handedness and coordinate superposition between the ground and excited electronic states satisfies the Eckart conditions and allows evaluation of the Duschinsky effect. The model shows excellent agreement with experiments for the determination of FCFs and photoelectron spectra of a series of increasing dimensions polynuclear hydrocarbons (PAHs), including naphthalene, anthracene, phenanthrene, and pyrene. In addition, a high-resolution prediction of the PES for the 84-dimensional PAH corannulene provides motivation for an additional experimental study. For FCFs, coordinate transformation between the initial and final states rather than the dimension of the systems more greatly influences the complexity of the spectral band shapes.
一种增强的广义解析方法可用于多维 Franck-Condon 因子(FCF)的确定,从而能够高效地预测大尺寸体系的光电子能谱。自动分配笛卡尔坐标系手性和基态与激发态之间的坐标叠加,满足 Eckart 条件,并允许评估 Duschinsky 效应。该模型在确定 FCF 和一系列增加尺寸多核芳烃(PAH)的光电子能谱方面与实验吻合得非常好,包括萘、蒽、菲和芘。此外,对 84 维 PAH -corannulene 的 PES 进行高分辨率预测为进一步的实验研究提供了动力。对于 FCF,初始和最终状态之间的坐标变换而不是体系的维度,更会影响光谱带形状的复杂性。