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Sc 和 Zr 溶质的共偏析行为及其对 Al Σ5 (210) [110] 对称倾斜晶界的影响:第一性原理研究。

Co-segregation behavior of Sc and Zr solutes and their effect on the Al Σ5 (210) [110] symmetrical tilt grain boundary: a first-principles study.

机构信息

State Key Laboratory of High Performance Complex Manufacturing, Central South University, Changsha 410083, China.

Light Alloy Research Institute, Central South University, Changsha 410012, China.

出版信息

Phys Chem Chem Phys. 2019 Sep 21;21(35):19437-19446. doi: 10.1039/c9cp03002f. Epub 2019 Aug 28.

Abstract

The research into the co-segregation behavior of Sc and Zr solutes and their effect on the mechanical properties of the Al Σ5 (210) [110] grain boundary was carried out by first principles calculations. It is concluded that Sc and Zr both have a powerful driving force to segregate to the grain boundary, and based on the most negative segregation energy, first one Sc atom segregates to the grain boundary, then one Zr atom and finally another Sc atom. The grain boundary energy, strengthening/embrittling energy, fracture energy and theoretical tensile peak stress all demonstrate that Sc and Zr solutes have a strengthening effect on the grain boundary, which can be attributed to the combination of the "chemical effect" (charge density variation) and the "structural effect" (atomic arrangement change), especially the migration of the first Sc-segregated site toward the grain boundary, which not only brings stronger Sc/Zr-Al bonds instead of weak Al-Al bonds but also leads to the shrinkage and charge accumulation of the great vacuum area between two grains. This work sheds light on the underlying mechanism of the better mechanical performance due to the co-addition of Sc and Zr solutes at the atomic and electronic levels.

摘要

通过第一性原理计算研究了 Sc 和 Zr 溶质的共偏析行为及其对 Al Σ5 (210)[110]晶界力学性能的影响。结果表明,Sc 和 Zr 都具有很强的驱动力向晶界偏析,根据最负的偏析能,首先一个 Sc 原子偏析到晶界,然后一个 Zr 原子和另一个 Sc 原子。晶界能、强化/脆化能、断裂能和理论拉伸峰值应力都表明 Sc 和 Zr 溶质对晶界具有强化作用,这归因于“化学效应”(电荷密度变化)和“结构效应”(原子排列变化)的结合,特别是第一个 Sc 偏析位置向晶界的迁移,这不仅带来了更强的 Sc/Zr-Al 键而不是较弱的 Al-Al 键,而且导致两个晶粒之间的大真空区域的收缩和电荷积累。这项工作从原子和电子水平揭示了 Sc 和 Zr 溶质共添加导致更好力学性能的潜在机制。

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