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原子间相互作用势的可传递性在分子模拟中的应用:铂、金和银的比较研究。

Interatomic Potentials Transferability for Molecular Simulations: A Comparative Study for Platinum, Gold and Silver.

机构信息

Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, Missouri, 65211, USA.

出版信息

Sci Rep. 2018 Feb 5;8(1):2424. doi: 10.1038/s41598-018-20375-4.

Abstract

A perfectly transferable interatomic potential that works for different materials and systems of interest is lacking. This work considers the transferability of several existing interatomic potentials by evaluating their capability at various temperatures, to determine the range of accuracy of these potentials in atomistic simulations. A series of embedded-atom-method (EAM) based interatomic potentials has been examined for three precious and popular transition metals in nanoscale studies: platinum, gold and silver. The potentials have been obtained from various credible and trusted repositories and were evaluated in a wide temperature range to tackle the lack of a transferability comparison between multiple available force fields. The interatomic potentials designed for the single elements, binary, trinary and higher order compounds were tested for each species using molecular dynamics simulation. Validity of results arising from each potential was investigated against experimental values at different temperatures from 100 to 1000 K. The data covers accuracy of all studied potentials for prediction of the single crystals' elastic stiffness constants as well as the bulk, shear and Young's modulus of the polycrystalline specimens. Results of this paper increase users' assurance and lead them to the right model by a way to easily look up data.

摘要

缺乏能够适用于不同材料和感兴趣体系的完美可转移原子间相互作用势。这项工作通过评估不同温度下几种现有原子间相互作用势的能力,来考虑它们的可转移性,以确定这些相互作用势在原子模拟中的精度范围。本研究对纳米尺度研究中三种常见的贵金属过渡金属(铂、金和银)的一系列基于嵌入原子方法(EAM)的原子间相互作用势进行了研究。这些相互作用势是从各种可靠和可信的资源库中获得的,并在很宽的温度范围内进行了评估,以解决多个可用力场之间缺乏可转移性比较的问题。针对单元素、二元、三元和更高阶化合物设计的原子间相互作用势,通过分子动力学模拟对每种物质进行了测试。使用不同温度(100-1000 K)下的实验值,针对每个相互作用势的结果的有效性进行了研究。该数据涵盖了所有研究的相互作用势在预测单晶弹性刚度常数以及多晶样品的体、剪切和杨氏模量方面的准确性。本文的结果增加了用户的信心,并通过一种易于查阅数据的方式引导他们选择正确的模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1bc3/5799210/bdfb679ff92a/41598_2018_20375_Fig1_HTML.jpg

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