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非哈密顿分子动力学模拟中广义克鲁克斯非平衡功定理的数值验证。

Numerical verification of the generalized Crooks nonequilibrium work theorem for non-Hamiltonian molecular dynamics simulations.

作者信息

Chelli Riccardo, Marsili Simone, Barducci Alessandro, Procacci Piero

机构信息

Dipartimento di Chimica, Università di Firenze, Via della Lastruccia 3, I-50019 Sesto Fiorentino, Italy.

出版信息

J Chem Phys. 2007 Jul 21;127(3):034110. doi: 10.1063/1.2749257.

Abstract

The generalized Crooks theorem (GCT) for deterministic non-Hamiltonian molecular dynamics simulations [Phys. Rev. E 75, 050101 (2007)] connects the probabilities of nonequilibrium realizations switching the system between two thermodynamic states, to the partition functions of these states. In comparison to the "classical" Crooks nonequilibrium work theorem [J. Stat. Phys. 90, 1481 (1998)], which deals with realizations involving only mechanical work, the GCT also accounts for additional work resulting from changes of the intensive and extensive thermodynamic variables of the system. In this article we present a numerical verification of the GCT using a Lennard-Jones fluid model where two particles are subject to a time-dependent external potential. Moreover, in order to switch the system between different thermodynamic states, the temperature and the pressure (or volume), which are controlled through the Martyna-Tobias-Klein equations of motion [J. Chem. Phys. 101, 4177 (1994)], are also varied externally. The free energy difference between states characterized by different distances of the target particles is evaluated using both a standard methodology (pair radial distribution functions) and the GCT. In order to exploit the various options provided by the GCT approach, i.e., the possibility of temperature/pressure/volume changes during the realizations, the free energy difference is recovered via arbitrary thermodynamic cycles. In all tests, the GCT is quantitatively verified.

摘要

确定性非哈密顿分子动力学模拟的广义克鲁克斯定理(GCT)[《物理评论E》75, 050101 (2007)] 将系统在两个热力学状态之间切换的非平衡实现概率与这些状态的配分函数联系起来。与“经典”克鲁克斯非平衡功定理[《统计物理杂志》90, 1481 (1998)] 相比,后者仅涉及包含机械功的实现,GCT 还考虑了系统强度和广延热力学变量变化产生的额外功。在本文中,我们使用 Lennard-Jones 流体模型对 GCT 进行了数值验证,其中两个粒子受到随时间变化的外部势作用。此外,为了使系统在不同热力学状态之间切换,通过马尔蒂纳 - 托拜厄斯 - 克莱因运动方程[《化学物理杂志》101, 4177 (1994)] 控制的温度和压力(或体积)也在外部进行变化。使用标准方法(对径向分布函数)和 GCT 评估了以目标粒子不同距离为特征的状态之间的自由能差。为了利用 GCT 方法提供的各种选项,即在实现过程中温度/压力/体积变化的可能性,通过任意热力学循环恢复自由能差。在所有测试中,GCT 都得到了定量验证。

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