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采用可极化相互作用势通过模拟计算离子材料的热导率。

Calculations of the thermal conductivities of ionic materials by simulation with polarizable interaction potentials.

作者信息

Ohtori Norikazu, Salanne Mathieu, Madden Paul A

机构信息

Graduate School of Science and Technology, Niigata University, Niigata 950-2181, Japan.

出版信息

J Chem Phys. 2009 Mar 14;130(10):104507. doi: 10.1063/1.3086856.

Abstract

Expressions for the energy current of a system of charged, polarizable ions in periodic boundary conditions are developed in order to allow the thermal conductivity in such a system to be calculated by computer simulation using the Green-Kubo method. Dipole polarizable potentials for LiCl, NaCl, and KCl are obtained on a first-principles basis by "force matching" to the results of ab initio calculations on suitable condensed-phase ionic configurations. Simulation results for the thermal conductivity, and also other transport coefficients, for the melts are compared with experimental data and with results obtained with other interaction potentials. The agreement with experiment is almost quantitative, especially for NaCl and KCl, indicating that these methodologies, perhaps with more sophisticated forms for the potential, can be used to predict thermal conductivities for melts for which experimental determination is very difficult. It is demonstrated that the polarization effects have an important effect on the energy current and are crucial to a predictive scheme for the thermal conductivity.

摘要

为了能够通过计算机模拟利用格林-库博方法计算周期性边界条件下带电、可极化离子系统的热导率,推导了该系统能量流的表达式。通过对合适的凝聚相离子构型进行从头算计算的结果进行“力匹配”,从第一性原理出发获得了LiCl、NaCl和KCl的偶极可极化势。将熔体的热导率以及其他输运系数的模拟结果与实验数据以及使用其他相互作用势得到的结果进行了比较。与实验结果几乎是定量相符的,特别是对于NaCl和KCl,这表明这些方法,或许采用更复杂形式的势,可以用于预测实验测定非常困难的熔体的热导率。结果表明,极化效应会对能量流产生重要影响,并且对于热导率的预测方案至关重要。

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