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基于含时密度泛函紧束缚方法的非绝热分子动力学模拟

Nonadiabatic molecular dynamics simulations based on time-dependent density functional tight-binding method.

作者信息

Wu Xiaoyan, Wen Shizheng, Song Huajing, Frauenheim Thomas, Tretiak Sergei, Yam ChiYung, Zhang Yu

机构信息

Shenzhen JL Computational Science and Applied Research Institute, Longhua District, Shenzhen 518110, China.

Jiangsu Province Key Laboratory of Modern Measurement Technology and Intelligent Systems, School of Physics and Electronic Electrical Engineering, Huaiyin Normal University, 223300 Huaian, China.

出版信息

J Chem Phys. 2022 Aug 28;157(8):084114. doi: 10.1063/5.0100339.

Abstract

Nonadiabatic excited state molecular dynamics underpin many photophysical and photochemical phenomena, such as exciton dynamics, and charge separation and transport. In this work, we present an efficient nonadiabatic molecular dynamics (NAMD) simulation method based on time-dependent density functional tight-binding (TDDFTB) theory. Specifically, the adiabatic electronic structure, an essential NAMD input, is described at the TDDFTB level. The nonadiabatic effects originating from the coupled motions of electrons and nuclei are treated by the trajectory surface hopping algorithm. To improve the computational efficiency, nonadiabatic couplings between excited states within the TDDFTB method are derived and implemented using an analytical approach. Furthermore, the time-dependent nonadiabatic coupling scalars are calculated based on the overlap between molecular orbitals rather than the Slater determinants to speed up the simulations. In addition, the electronic decoherence scheme and a state reassigned unavoided crossings algorithm, which has been implemented in the NEXMD software, are used to improve the accuracy of the simulated dynamics and handle trivial unavoided crossings. Finally, the photoinduced nonadiabatic dynamics of a benzene molecule are simulated to demonstrate our implementation. The results for excited state NAMD simulations of benzene molecule based on TDDFTB method compare well to those obtained with numerically expensive time-dependent density functional theory. The proposed methodology provides an attractive theoretical simulation tool for predicting the photophysical and photochemical properties of complex materials.

摘要

非绝热激发态分子动力学是许多光物理和光化学现象的基础,如激子动力学、电荷分离与传输。在这项工作中,我们提出了一种基于含时密度泛函紧束缚(TDDFTB)理论的高效非绝热分子动力学(NAMD)模拟方法。具体而言,绝热电子结构作为NAMD的一个重要输入,在TDDFTB水平上进行描述。源于电子与原子核耦合运动的非绝热效应通过轨迹表面跳跃算法进行处理。为提高计算效率,采用解析方法推导并实现了TDDFTB方法中激发态之间的非绝热耦合。此外,基于分子轨道之间的重叠而非斯莱特行列式来计算含时非绝热耦合标量,以加速模拟。另外,采用在NEXMD软件中实现的电子退相干方案和状态重新分配的不可避免交叉算法,来提高模拟动力学的准确性并处理琐碎的不可避免交叉。最后,对苯分子的光致非绝热动力学进行了模拟,以展示我们的实现方法。基于TDDFTB方法对苯分子激发态NAMD模拟的结果与使用计算成本高昂的含时密度泛函理论获得的结果相当。所提出的方法为预测复杂材料的光物理和光化学性质提供了一种有吸引力的理论模拟工具。

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