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快速诺瑟-胡佛恒温器:准热力学平衡中的分子动力学。

Fast Nosé-Hoover thermostat: molecular dynamics in quasi-thermodynamic equilibrium.

机构信息

Laboratory of Physical Chemistry, ETH Zürich, Vladimir-Prelog-Weg 2, 8093 Zürich, Switzerland.

出版信息

Phys Chem Chem Phys. 2019 Mar 13;21(11):6059-6070. doi: 10.1039/c8cp06800c.

Abstract

An extension of the Nosé-Hoover thermostat equation for molecular dynamics (MD) simulation is introduced, which perturbs fast degrees of freedom out of canonical equilibrium, while preserving the average temperature of the system. Based on the generalised Liouville equation, it is shown that the newly introduced fast Nosé-Hoover (FNH) equations give rise to a dynamical system with a well-defined non-equilibrium probability distribution. Corresponding thermostat parameters are identified, which in principle allow to sample arbitrarily close to canonical equilibrium. Results show that the dynamic system properties (e.g. self-diffusion, shear viscosity, dielectric permittivity and rotational relaxation times) are only moderately perturbed for typical FNH setups. However, the non-equilibrium FNH equations modify the occurrence of rare events substantially and thus offer a novel approach for enhanced sampling in MD. In particular, it is shown that the FNH thermostat increased significantly the frequency of the folding and unfolding process of short β-peptides. The efficiency of the phase-space exploration solely depends on the additionally imposed quasi-equilibrium conditions, i.e. it does not rely on any modification of the potential-energy surface.

摘要

本文介绍了一种用于分子动力学(MD)模拟的 Nosé-Hoover 热浴方程的扩展,该扩展使正则平衡中的快速自由度发生偏移,同时保持系统的平均温度。基于广义刘维尔方程,本文表明新引入的快速 Nosé-Hoover(FNH)方程产生了一个具有明确定义的非平衡概率分布的动力学系统。确定了相应的热浴参数,原则上允许对任意接近正则平衡的状态进行采样。结果表明,对于典型的 FNH 设置,动力学系统特性(例如自扩散、剪切黏度、介电常数和旋转弛豫时间)仅受到适度的干扰。然而,非平衡 FNH 方程会显著改变罕见事件的发生,从而为 MD 中的增强采样提供了一种新方法。具体来说,结果表明,FNH 热浴大大增加了短β-肽的折叠和展开过程的频率。相空间探索的效率仅取决于额外施加的准平衡条件,即它不依赖于对势能面的任何修改。

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