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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Defect energetics of concentrated solid-solution alloys from ab initio calculations: Ni0.5Co0.5, Ni0.5Fe0.5, Ni0.8Fe0.2 and Ni0.8Cr0.2
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Defect energetics of concentrated solid-solution alloys from ab initio calculations: Ni0.5Co0.5, Ni0.5Fe0.5, Ni0.8Fe0.2 and Ni0.8Cr0.2

机译:从头算计算浓固溶合金的缺陷能能:Ni0.5Co0.5,Ni0.5Fe0.5,Ni0.8Fe0.2和Ni0.8Cr0.2

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摘要

It has been shown that concentrated solid solution alloys possess unusual electronic, magnetic, transport, mechanical and radiation-resistant properties that are directly related to underlying chemical complexity. Because every atom experiences a different local atomic environment, the formation and migration energies of vacancies and interstitials in these alloys exhibit a distribution, rather than a single value as in a pure metal or dilute alloy. Using ab initio calculations based on density functional theory and special quasirandom structures, we have characterized the distribution of defect formation energy and migration barrier in four Ni-based solid-solution alloys: Ni0.5Co0.5, Ni0.5Fe0.5, Ni0.8Fe0.2 and Ni0.8Cr0.2. As defect formation energies in finite-size models depend sensitively on the elemental chemical potential, we have developed a computationally efficient method for determining it which takes into account the global composition and the local short-range order. In addition we have compared the results of our ab initio calculations to those obtained from available embedded atom method (EAM) potentials. Our results indicate that the defect formation and migration energies are closely related to the specific atoms in the structure, which further determines the elemental diffusion properties. Different EAM potentials yield different features of defect energetics in concentrated alloys, pointing to the need for additional potential development efforts in order to allow spatial and temporal scale-up of defect and simulations, beyond those accessible to ab initio methods.
机译:已经表明,浓固溶体合金具有不同寻常的耐电,磁,输运,机械和抗辐射性能,这些性能与潜在的化学复杂性直接相关。因为每个原子都经历不同的局部原子环境,所以这些合金中空位和间隙的形成和迁移能呈现出分布,而不是像纯金属或稀合金中那样具有单一值。使用基于密度泛函理论和特殊准随机结构的从头算算,我们表征了四种Ni基固溶合金Ni0.5Co0.5,Ni0.5Fe0.5,Ni0中缺陷形成能和迁移势垒的分布。 8Fe0.2和Ni0.8Cr0.2。由于有限尺寸模型中的缺陷形成能量敏感地取决于元素化学势,因此,我们已经开发出一种计算有效的方法来确定缺陷,该方法考虑了整体组成和局部短程顺序。另外,我们将从头算的结果与从可用嵌入原子方法(EAM)势获得的结果进行了比较。我们的结果表明,缺陷的形成和迁移能与结构中的特定原子密切相关,这进一步决定了元素的扩散特性。不同的EAM势能在浓缩合金中产生不同的缺陷能量学特征,这表明需要进行额外的潜在开发工作,以便允许缺陷和模拟的空间和时间按比例扩大,而不是从头开始的方法。

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