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超临界温度下电解质-水体系的ReaxFF分子动力学模拟

ReaxFF molecular dynamics simulations of electrolyte-water systems at supercritical temperature.

作者信息

Dasgupta Nabankur, Shin Yun Kyung, Fedkin Mark V, van Duin Adri

机构信息

Department of Engineering Science and Mechanics, Pennsylvania State University, University Park, Pennsylvania 16802, USA.

Department of Mechanical Engineering, Pennsylvania State University, University Park, Pennsylvania 16802, USA.

出版信息

J Chem Phys. 2020 May 29;152(20):204502. doi: 10.1063/5.0006676.

Abstract

We have performed ReaxFF molecular dynamics simulations of alkali metal-chlorine pairs in different water densities at supercritical temperature (700 K) to elucidate the structural and dynamical properties of the system. The radial distribution function and the angular distribution function explain the inter-ionic structural and orientational arrangements of atoms during the simulation. The coordination number of water molecules in the solvation shell of ions increases with an increase in the radius of ions. We find that the self-diffusion coefficient of metal ions increases with a decrease in density under supercritical conditions due to the formation of voids within the system. The hydrogen bond dynamics has been interpreted by the residence time distribution of various ions, which shows Li having the highest water retaining capability. The void distribution within the system has been analyzed by using the Voronoi polyhedra algorithm providing an estimation of void formation within the system at high temperatures. We observe the formation of salt clusters of Na and K at low densities due to the loss of dielectric constants of ions. The diffusion of ions gets altered dramatically due to the formation of voids and nucleation of ions in the system.

摘要

我们在超临界温度(700K)下对不同水密度中的碱金属 - 氯对进行了ReaxFF分子动力学模拟,以阐明该系统的结构和动力学性质。径向分布函数和角分布函数解释了模拟过程中原子的离子间结构和取向排列。离子溶剂化壳层中水分子的配位数随着离子半径的增加而增加。我们发现,在超临界条件下,由于系统内形成空隙,金属离子的自扩散系数随密度降低而增加。通过各种离子的停留时间分布解释了氢键动力学,结果表明锂具有最高的保水能力。利用Voronoi多面体算法分析了系统内的空隙分布,该算法提供了高温下系统内空隙形成的估计。我们观察到在低密度下由于离子介电常数的损失而形成了钠和钾的盐簇。由于系统中形成空隙和离子成核,离子的扩散发生了显著变化。

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