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为基于轨迹的非绝热分子动力学恢复电子相干性/退相干性。

Restoring electronic coherence/decoherence for a trajectory-based nonadiabatic molecular dynamics.

作者信息

Zhu Chaoyuan

机构信息

Institute of Molecular Science, Department of Applied Chemistry, and Center for Interdisciplinary Molecular Science, National Chiao-Tung University, Hsinchu 300, Taiwan.

State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Science, Zhongshan Road 457, Dalian 116023, P. R. China.

出版信息

Sci Rep. 2016 Apr 11;6:24198. doi: 10.1038/srep24198.

Abstract

By utilizing the time-independent semiclassical phase integral, we obtained modified coupled time-dependent Schrödinger equations that restore coherences and induce decoherences within original simple trajectory-based nonadiabatic molecular dynamic algorithms. Nonadiabatic transition probabilities simulated from both Tully's fewest switches and semiclassical Ehrenfest algorithms follow exact quantum electronic oscillations and amplitudes for three out of the four well-known model systems. Within the present theory, nonadiabatic transitions estimated from statistical ensemble of trajectories accurately follow those of the modified electronic wave functions. The present theory can be immediately applied to the molecular dynamic simulations of photochemical and photophysical processes involving electronic excited states.

摘要

通过利用与时间无关的半经典相积分,我们得到了修正的含时耦合薛定谔方程,这些方程在基于简单轨迹的原始非绝热分子动力学算法中恢复了相干性并引发了退相干性。从塔利最少开关算法和半经典埃伦费斯特算法模拟得到的非绝热跃迁概率,对于四个著名模型系统中的三个,都遵循精确的量子电子振荡和振幅。在当前理论中,从轨迹统计系综估计的非绝热跃迁准确地遵循修正电子波函数的跃迁。本理论可立即应用于涉及电子激发态的光化学和光物理过程的分子动力学模拟。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c39d/4827081/ff2e74c6c650/srep24198-f1.jpg

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