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用于大规模质子动力学模拟的动力学矩阵传播子方案。

Dynamical matrix propagator scheme for large-scale proton dynamics simulations.

作者信息

Dreßler Christian, Kabbe Gabriel, Brehm Martin, Sebastiani Daniel

机构信息

Institute of Chemistry, Martin Luther University Halle-Wittenberg, Von-Danckelmann-Platz 4, 06120 Halle (Saale), Germany.

出版信息

J Chem Phys. 2020 Mar 21;152(11):114114. doi: 10.1063/1.5140635.

Abstract

We derive a matrix formalism for the simulation of long range proton dynamics for extended systems and timescales. On the basis of an ab initio molecular dynamics simulation, we construct a Markov chain, which allows us to store the entire proton dynamics in an M × M transition matrix (where M is the number of oxygen atoms). In this article, we start from common topology features of the hydrogen bond network of good proton conductors and utilize them as constituent constraints of our dynamic model. We present a thorough mathematical derivation of our approach and verify its uniqueness and correct asymptotic behavior. We propagate the proton distribution by means of transition matrices, which contain kinetic data from both ultra-short (sub-ps) and intermediate (ps) timescales. This concept allows us to keep the most relevant features from the microscopic level while effectively reaching larger time and length scales. We demonstrate the applicability of the transition matrices for the description of proton conduction trends in proton exchange membrane materials.

摘要

我们推导了一种矩阵形式,用于模拟扩展系统和时间尺度下的长程质子动力学。基于从头算分子动力学模拟,我们构建了一个马尔可夫链,这使我们能够将整个质子动力学存储在一个M×M转移矩阵中(其中M是氧原子的数量)。在本文中,我们从良好质子导体的氢键网络的常见拓扑特征出发,并将其用作我们动态模型的组成约束。我们对我们的方法进行了全面的数学推导,并验证了其唯一性和正确的渐近行为。我们通过转移矩阵传播质子分布,这些转移矩阵包含来自超短(亚皮秒)和中间(皮秒)时间尺度的动力学数据。这个概念使我们能够在有效达到更大的时间和长度尺度的同时,保留微观层面最相关的特征。我们展示了转移矩阵在描述质子交换膜材料中质子传导趋势方面的适用性。

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