Yamijala Sharma S R K C, Huo Pengfei
Department of Chemistry, University of Rochester, 120 Trustee Road, Rochester, New York 14627, United States.
Department of Chemistry, Indian Institute of Technology-Madras, Chennai 600036, India.
J Phys Chem A. 2021 Jan 21;125(2):628-635. doi: 10.1021/acs.jpca.0c10151. Epub 2021 Jan 12.
We apply direct nonadiabatic dynamics simulations to investigate photoinduced charge transfer reactions. Our approach is based on the mixed quantum-classical fewest switches surface hopping (FSSH) method that treats the transferring electron through time-dependent density functional theory and the nuclei classically. The photoinduced excited state is modeled as a transferring single-electron that initially occupies the LUMO of the donor molecule/moiety. This single-particle electronic wave function is then propagated quantum mechanically by solving the time-dependent Schrödinger equation in the basis of the instantaneous molecular orbitals (MOs) of the entire system. The nonadiabatic transitions among electronic states are modeled using the FSSH approach within the classical-path approximation. We apply this approach to simulate the photoinduced charge transfer dynamics in a few well-characterized molecular systems. Our results are in excellent agreement with both the experimental measurements and high-level (yet expensive) theoretical results.
我们应用直接非绝热动力学模拟来研究光致电荷转移反应。我们的方法基于混合量子-经典最少开关表面跳跃(FSSH)方法,该方法通过含时密度泛函理论处理转移电子,而原子核则采用经典方法处理。光致激发态被建模为一个转移单电子,它最初占据供体分子/部分的最低未占分子轨道(LUMO)。然后,通过在整个系统的瞬时分子轨道(MO)基础上求解含时薛定谔方程,对这个单粒子电子波函数进行量子力学传播。在经典路径近似下,使用FSSH方法对电子态之间的非绝热跃迁进行建模。我们应用这种方法来模拟一些特征明确的分子体系中的光致电荷转移动力学。我们的结果与实验测量值以及高水平(但昂贵)的理论结果都非常吻合。