Density Functional Theory Study of Solute Cluster Growth Process in Mg-Y-Zn LPSO Alloy

M. Itakura, M. Yamaguchi, E. Abe, D. Egusa
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Abstract

Solute cluster in LPSO alloys plays a key role in their idiosyncratic plastic behaviour such as kink formation and kink strengthening. Identifying the atomistic details of the cluster structure is a prerequisite for any atomistic modeling of LPSO alloys aiming for their improved strength and ductility, but there have been uncertainty about interstitial atom in the cluster. While density functional theory calculations have shown that inclusion of interstitial atom is energetically favorable, it has been unclear how the extra atom is provided, how much of the cluster have interstitial atoms, and what kind of element they are. In the present work we use density functional theory calculations to investigate the growth process of the solute cluster, specifically that of Mg-Y-Zn LPSO alloy, to determine the precise atomistic structure of solute cluster. We show that a pair of an interstitial atom and a vacancy is spontaneously created when a certain number of solute atoms are absorbed into the cluster, and all the full-grown cluster should include interstitial atom. We also show that interstitial atom is either Mg or Y atom, while Zn interstitial atom is extremely rare. These knowledge greatly simplifies atomistic modeling of solute clusters in Mg-Y-Zn alloy. Owing to the vacancies emitted from the cluster, vacancy density should be over-saturated in regions where solute clusters are growing, and the increased vacancy density accelerates cluster growth.
Mg-Y-Zn LPSO合金溶质团簇生长过程的密度泛函理论研究
溶质团簇在LPSO合金的特殊塑性行为中起关键作用,如扭结形成和扭结强化。确定团簇结构的原子细节是任何旨在提高其强度和延展性的LPSO合金原子建模的先决条件,但团簇中的间隙原子一直存在不确定性。虽然密度泛函理论计算表明,间隙原子的包含在能量上是有利的,但不清楚额外的原子是如何提供的,簇中有多少间隙原子,以及它们是什么类型的元素。本文采用密度泛函理论计算研究了溶质团簇的生长过程,特别是Mg-Y-Zn LPSO合金的生长过程,以确定溶质团簇的精确原子结构。我们发现,当一定数量的溶质原子被吸收到团簇中时,会自发地产生一对间隙原子和空位,并且所有成熟的团簇都应该包含间隙原子。我们还发现间隙原子为Mg或Y原子,而Zn的间隙原子极为罕见。这些知识大大简化了Mg-Y-Zn合金中溶质团簇的原子建模。由于溶质团簇发出的空位,在溶质团簇生长的区域,空位密度会过度饱和,而空位密度的增加会加速团簇的生长。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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