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Modified embedded-atom method interatomic potentials for the Mg-Al alloy system

机译:Mg-Al合金体系的改进的嵌入原子方法原子间势

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We developed modified embedded-atom method (MEAM) interatomic potentials for the Mg-Al alloy system using a first-principles method based on density functional theory (DFT). The materials parameters, such as the cohesive energy, equilibrium atomic volume, and bulk modulus, were used to determine the MEAM parameters. Face-centered cubic, hexagonal close packed, and cubic rock salt structures were used as the reference structures for Al, Mg, and MgAl, respectively. The applicability of these MEAM potentials to atomistic simulations for investigating Mg-Al alloys was demonstrated by performing simulations on Mg and Al atoms in a variety of geometries. These MEAM potentials were used to calculate the adsorption energies of Al and Mg atoms on Al (111) and Mg (0001) surfaces. The formation energies and geometries of various point defects, such as vacancies, interstitial defects, and substitutional defects, were also calculated. We found that the MEAM potentials give a better overall agreement with DFT calculations and experiments when compared against the previously published MEAM potentials.
机译:我们使用基于密度泛函理论(DFT)的第一原理方法为Mg-Al合金系统开发了改进的嵌入原子方法(MEAM)原子间势。材料参数(例如内聚能,平衡原子量和体积模量)用于确定MEAM参数。面心立方,六方密堆积和立方岩盐结构分别用作Al,Mg和MgAl的参考结构。通过在各种几何形状中对Mg和Al原子进行模拟,证明了这些MEAM潜力对用于研究Mg-Al合金的原子模拟的适用性。这些MEAM电势用于计算Al和Mg原子在Al(111)和Mg(0001)表面上的吸附能。还计算了各种点缺陷(如空位,间隙缺陷和替代缺陷)的形成能和几何形状。我们发现,与先前发布的MEAM电位相比,MEAM电位在DFT计算和实验方面具有更好的总体一致性。

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