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具有热化现象的简单量子动力学

Simple Quantum Dynamics with Thermalization.

作者信息

Jansen Thomas L C

机构信息

Zernike Institute for Advanced Materials, University of Groningen , Nijenborgh 4, 9747 AG Groningen, The Netherlands.

出版信息

J Phys Chem A. 2018 Jan 11;122(1):172-183. doi: 10.1021/acs.jpca.7b10380. Epub 2017 Dec 20.

Abstract

In this paper, we introduce two simple quantum dynamics methods. One is based on the popular surface-hopping method, and the other is based on rescaling of the propagation on the bath ground-state potential surface. The first method is special, as it avoids specific feedback from the simulated quantum system to the bath and can be applied for precalculated classical trajectories. It is based on the equipartition theorem to determine if hops between different potential energy surfaces are allowed. By comparing with the formally exact Hierarchical Equations Of Motion approach for four model systems we find that the method generally approximates the quantum dynamics toward thermal equilibrium very well. The second method is based on rescaling of the nonadiabatic coupling and also neglect the effect of the state of the quantum system on the bath. By the nature of the approximations, they cannot reproduce the effect of bath relaxation following excitation. However, the methods are both computationally more tractable than the conventional fewest switches surface hopping, and we foresee that the methods will be powerful for simulations of quantum dynamics in systems with complex bath dynamics, where the system-bath coupling is not too strong compared to the thermal energy.

摘要

在本文中,我们介绍了两种简单的量子动力学方法。一种基于流行的表面跳跃方法,另一种基于在浴基态势能面上对传播进行重新标度。第一种方法很特别,因为它避免了从模拟量子系统到浴的特定反馈,并且可应用于预先计算的经典轨迹。它基于均分定理来确定不同势能面之间的跳跃是否被允许。通过与四个模型系统的形式上精确的运动方程层次方法进行比较,我们发现该方法通常能很好地近似量子动力学向热平衡的过程。第二种方法基于非绝热耦合的重新标度,并且也忽略了量子系统状态对浴的影响。由于近似的性质,它们无法再现激发后浴弛豫的效果。然而,这两种方法在计算上都比传统的最少开关表面跳跃更易于处理,并且我们预计这些方法对于具有复杂浴动力学的系统中的量子动力学模拟将很强大,在这些系统中,与热能相比,系统 - 浴耦合不太强。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7feb/5770886/e15cb55b235a/jp-2017-10380y_0001.jpg

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