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Quantum-Classical Nonadiabatic Dynamics: Coupled- vs Independent-Trajectory Methods

机译:量子经典非绝热动力学:耦合轨迹法与独立轨迹法

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摘要

Trajectory-based mixed, quantum-classical approaches to coupled electron-nuclear dynamics suffer from well studied problems such as the lack of (or incorrect account for) decoherence in the trajectory surface hopping method-and the inability of reproducing the spatial splitting of a nuclear wave packet in Ehrenfest-like dynamics. In the context of electronic nonadiabatic processes, these problems can result in wrong predictions for quantum populations and in unphysical outcomes for the nuclear dynamics. In this paper, we propose a solution to these issues by approximating the coupled electronic and nuclear equations within the framework of the exact factorization of the electron nuclear wave function. We present a simple quantum classical scheme based on coupled classical trajectories and test it against the full quantum mechanical solution from wave packet dynamics for some model situations which represent particularly challenging problems for the above-mentioned traditional methods
机译:基于轨迹的混合量子经典方法耦合电子-核动力学的问题受到了深入研究的问题,例如轨迹表面跳变方法缺乏(或不正确地解释了)去相干性以及无法再现核的空间分裂类Ehrenfest动力学中的波包。在电子非绝热过程的背景下,这些问题可能导致对量子种群的错误预测以及对核动力学的非物理结果。在本文中,我们通过在电子核波函数的精确因式分解的框架内逼近耦合的电子方程和核方程来提出这些问题的解决方案。我们提出了一个基于耦合经典轨迹的简单量子经典方案,并针对某些模型情况对来自波包动力学的完整量子力学解进行了测试,这些模型情况对于上述传统方法而言是特别具有挑战性的问题

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