Wada Satoi, Tsutsumi Takuro, Saita Kenichiro, Taketsugu Tetsuya
Graduate School of Chemical Sciences and Engineering, Hokkaido University, Sapporo, Japan.
Department of Chemistry, Faculty of Science, Hokkaido University, Sapporo, Japan.
J Comput Chem. 2024 Apr 5;45(9):552-562. doi: 10.1002/jcc.27271. Epub 2023 Nov 27.
Recently, surface-hopping ab initio molecular dynamics (SH-AIMD) simulations have come to be used to discuss the mechanisms and dynamics of excited-state chemical reactions, including internal conversion and intersystem crossing. In dynamics simulations involving intersystem crossing, there are two potential energy surfaces (PESs) governing the motion of nuclei: PES in a spin-pure state and PES in a spin-mixed state. The former gives wrong results for molecular systems with large spin-orbit coupling (SOC), while the latter requires a potential gradient that includes a change in SOC at each point, making the computational cost very high. In this study, we systematically investigate the extent to which the magnitude of SOC affects the results of the spin-pure state-based dynamics simulations for the hydride MH (M = Si, Ge, Sn, Pb) by performing SH-AIMD simulations based on spin-pure and spin-mixed states. It is clearly shown that spin-mixed state PESs are indispensable for the dynamics simulation of intersystem crossing in systems containing elements Sn and Pb from the fifth period onward. Furthermore, in addition to the widely used Tully's fewest switches (TFS) algorithm, the Zhu-Nakamura (ZN) global switching algorithm, which is computationally less expensive, is applied to SH for comparison. The results from TFS- and ZN-SH-AIMD methods are in qualitative agreement, suggesting that the less expensive ZN-SH-AIMD can be successfully utilized to investigate the dynamics of photochemical reactions based on quantum chemical calculations.
最近,表面跳跃从头算分子动力学(SH - AIMD)模拟已被用于讨论激发态化学反应的机制和动力学,包括内转换和系间窜越。在涉及系间窜越的动力学模拟中,有两个势能面(PESs)控制原子核的运动:自旋纯态的PES和自旋混合态的PES。对于具有大自旋 - 轨道耦合(SOC)的分子系统,前者给出错误的结果,而后者需要一个在每个点都包括SOC变化的势能梯度,这使得计算成本非常高。在本研究中,我们通过基于自旋纯态和自旋混合态进行SH - AIMD模拟,系统地研究了SOC的大小对氢化物MH(M = Si、Ge、Sn、Pb)基于自旋纯态的动力学模拟结果的影响程度。结果清楚地表明,对于从第五周期开始包含Sn和Pb元素的系统,自旋混合态PES对于系间窜越的动力学模拟是不可或缺的。此外,除了广泛使用的塔利最少开关(TFS)算法外,计算成本较低的朱 - 中村(ZN)全局开关算法也被应用于SH进行比较。TFS - 和ZN - SH - AIMD方法的结果在定性上是一致的,这表明成本较低的ZN - SH - AIMD可以成功地用于基于量子化学计算研究光化学反应的动力学。