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采用嵌入原子法优化的铜镍合金原子间势。

An optimized interatomic potential for Cu-Ni alloys with the embedded-atom method.

机构信息

Institute of Informatics, Istanbul Technical University, Maslak, 34469 Istanbul, Turkey.

出版信息

J Phys Condens Matter. 2014 Jan 22;26(3):035404. doi: 10.1088/0953-8984/26/3/035404. Epub 2013 Dec 18.

Abstract

We have developed a semi-empirical and many-body type model potential using a modified charge density profile for Cu-Ni alloys based on the embedded-atom method (EAM) formalism with an improved optimization technique. The potential is determined by fitting to experimental and first-principles data for Cu, Ni and Cu-Ni binary compounds, such as lattice constants, cohesive energies, bulk modulus, elastic constants, diatomic bond lengths and bond energies. The generated potentials were tested by computing a variety of properties of pure elements and the alloy of Cu, Ni: the melting points, alloy mixing enthalpy, lattice specific heat, equilibrium lattice structures, vacancy formation and interstitial formation energies, and various diffusion barriers on the (100) and (111) surfaces of Cu and Ni.

摘要

我们使用基于嵌入原子法 (EAM) 形式的改进电荷密度分布,为 Cu-Ni 合金开发了一种半经验多体类型的模型势能,并采用了改进的优化技术。该势能是通过拟合实验和第一性原理数据来确定的,这些数据包括 Cu、Ni 和 Cu-Ni 二元化合物的晶格常数、结合能、体弹模量、弹性常数、双原子键长和键能。生成的势能通过计算纯元素和 Cu、Ni 合金的各种性质进行了测试:熔点、合金混合焓、晶格比热容、平衡晶格结构、空位形成能和间隙形成能,以及 Cu 和 Ni 的 (100) 和 (111) 表面的各种扩散势垒。

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