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通过分子动力学研究熔融氧化铝中的部分电荷传输性质

Study of the Partial Charge Transport Properties in the Molten Alumina via Molecular Dynamics.

作者信息

Gheribi Aïmen E, Serva Alessandra, Salanne Mathieu, Machado Kelly, Zanghi Didier, Bessada Catherine, Chartrand Patrice

机构信息

Department of Chemical Engineering, Centre for Research in Computational Thermochemistry (CRCT)-Polytechnique Montréal, Box 6079, Station Downtown, Montréal, Québec, Canada H3C 3A7.

CNRS, Physico-chimie des électrolytes et nanosystèmes interfaciaux, Phenix, Sorbonne Université, F-75005 Paris, France.

出版信息

ACS Omega. 2019 May 2;4(5):8022-8030. doi: 10.1021/acsomega.9b01110. eCollection 2019 May 31.

Abstract

Knowing the charge-transport properties of molten oxides is essential for industrial applications, particularly when attempting to control the energy required to separate a metal from its ore concentrate. Nowadays, in the context of a drastic increase of computational resources, research in industrial process simulation and their optimization is gaining popularity. Such simulations require accurate data as input for properties in a wide range of compositions, temperatures, and mechanical stresses. Unfortunately, due to their high melting points, we observe a severe lack of (reproducible) experimental data for many of the molten oxides. An alternative consists in using molecular dynamic simulations employing nonempirical force fields to predict the charge-transport properties of molten oxides and thus alleviate the lack of experimental data. Here, we study molten alumina using two polarizable force fields, with different levels of sophistication, parameterized on electronic structure calculations only. After validating the models against the experimental sets of density and electrical conductivity, we are able to determine the various ionic contributions to the overall charge transport in a wide range of temperatures.

摘要

了解熔融氧化物的电荷传输特性对于工业应用至关重要,特别是在试图控制从矿石精矿中分离金属所需的能量时。如今,在计算资源急剧增加的背景下,工业过程模拟及其优化的研究越来越受欢迎。此类模拟需要准确的数据作为各种成分、温度和机械应力下属性的输入。不幸的是,由于它们的高熔点,我们发现许多熔融氧化物严重缺乏(可重复的)实验数据。一种替代方法是使用采用非经验力场的分子动力学模拟来预测熔融氧化物的电荷传输特性,从而缓解实验数据的不足。在这里,我们使用两个可极化力场研究熔融氧化铝,这两个力场具有不同的复杂程度,仅基于电子结构计算进行参数化。在根据密度和电导率的实验数据集验证模型后,我们能够确定在广泛的温度范围内各种离子对整体电荷传输的贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b6c/6648625/97efc55aa0e3/ao-2019-011106_0001.jpg

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