晶界
材料科学
原子间势
合金
分子动力学
从头算
Atom(片上系统)
空格(标点符号)
嵌入原子模型
航程(航空)
从头算量子化学方法
化学物理
微观结构
物理
冶金
计算机科学
计算化学
化学
嵌入式系统
分子
复合材料
操作系统
量子力学
作者
Malik Wagih,Christopher A. Schuh
标识
DOI:10.1103/physrevlett.129.046102
摘要
The segregation of solute atoms at grain boundaries (GBs) can strongly impact the structural and functional properties of polycrystals. Yet, due to the limited availability of simulation tools to study polycrystals at the atomistic scale (i.e., interatomic potentials), there is a minimal understanding of the variation of solute segregation tendencies across the very complex space of GB microenvironments and the large range of alloys in which it can occur. Here, we develop an algorithmic framework that can directly learn the full spectrum of segregation energies for a metal solute atom in a metal polycrystal from ab initio methods, bypassing the need for alloy interatomic potentials. This framework offers a pathway to a comprehensive catalog of GB solute segregation with quantum accuracy, for the entire alloy space. As an initial demonstration in this pursuit, we build an extensive GB segregation database for aluminum-based alloys across the periodic table, including dozens of alloys for which there are substantially no prior data.
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