论文标题

来自环聚合物分子动力学的微域速率:直接射击,固定相和最大渗透方法

Microcanonical rates from ring-polymer molecular dynamics: Direct-shooting, stationary-phase, and maximum-entropy approaches

论文作者

Tao, Xuecheng, Shushkov, Philip, Miller III, Thomas F.

论文摘要

我们解决了使用环聚合物分子动力学(RPMD)的涉及显着核量子效应的过程的微域反应速率的计算,无论是有或没有电子非绝热的过渡。在说明了幼稚的自由粒子直接射击方法的缺点之后,其中内环聚合物模式的温度设置为转化能量表,我们根据热反应速率的逆laplace变换来研究基于微跨率的替代策略。结果表明,固定相近似(SPA)的简单应用大大提高了使用RPMD的微域速率的性能,尤其是在隧道占主导地位的低能能区域。然后,对于电子绝热和非绝热模型系统,使用水疗中心作为贝叶斯先验,使用热反应速率的最大熵反转获得了数值精确的RPMD微磁性速率。最后,使用SPA确定的温度对内部环形聚合物模式进行了直接射击方法,从而导致一种简单,直接仿真的方法,并在隧道方案中具有提高的精度。

We address the calculation of microcanonical reaction rates for processes involving significant nuclear quantum effects using ring-polymer molecular dynamics (RPMD), both with and without electronically non-adiabatic transitions. After illustrating the shortcomings of the naive free-particle direct-shooting method, in which the temperature of the internal ring-polymer modes is set to the translational energy scale, we investigate alternative strategies based on the expression for the microcanonical rate in terms of the inverse Laplace transform of the thermal reaction rate. It is shown that simple application of the stationary-phase approximation (SPA) dramatically improves the performance of the microcanonical rates using RPMD, particularly in the low-energy region where tunneling dominates. Using the SPA as a Bayesian prior, numerically exact RPMD microcanonical rates are then obtained using maximum entropy inversion of the thermal reaction rates, for both electronically adiabatic and non-adiabatic model systems. Finally, the direct-shooting method is revisited using the SPA-determined temperature for the internal ring-polymer modes, leading to a simple, direct-simulation method with improved accuracy in the tunneling regime.

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