Local Lattice Distortion Mediated Formation of Stacking Faults in Mg Alloys

W. Wang, B. Tang, S. Shang, Jiangwei Wang, Shilei Li, Yi Wang, Jian Zhu, Siyuan Wei, Jun Wang, K. Darling, S. Mathaudhu, Yiguang Wang, Yang Ren, X. Hui, L. Kecskes, Jinshan Li, Zi-kui Liu
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引用次数: 36

Abstract

Abstract Long periodic stacking ordered phases (LPSOs), consisting of various configurations of stacking faults, play an important role in developing ultrastrong Mg alloys with moderate ductility. However, their formation mechanisms are far from clear as no apparent defects are introduced during their formation as it is commonly believed that stacking faults are induced by defects. Here, we present the atomic and electronic basis for lattice-distortion-mediated formation of stacking faults, i.e., localized face-centred-cubic (FCC) structures, within a Mg-Zn-Y alloy with a hexagonal close-packed (HCP) structure. The atomic motion trajectories from ab-initio molecular dynamic simulations show that the Mg atoms occupying the nearest neighbour positions of Zn and Y solute atoms undergo a local HCP-to-FCC transition. It is revealed that a local lattice distortion caused by the solute atoms enables the Mg atoms to move and rearrange into a local FCC configuration, which is validated by high resolution scanning transmission microscopy and in-situ synchrotron X-ray diffraction. Our simulations provide profound insight into the formation mechanism of stacking faults in HCP Mg and their physical nature of phase transformations. This is not only critically important because conventional defects, such as dislocations and vacancies, are important to deformation for Mg and its alloys, but also because they serve as a potential new approach to the design of advanced Mg alloys when defects could be used to facilitate.
镁合金中局部晶格畸变介导的层错形成
长周期有序层相(LPSOs)由多种层错组成,在发展中等延展性的超强镁合金中起着重要作用。然而,由于在其形成过程中没有引入明显的缺陷,其形成机制尚不清楚,通常认为层错是由缺陷引起的。在这里,我们提出了晶格扭曲导致层错形成的原子和电子基础,即局域面心立方(FCC)结构,在具有六边形紧密堆积(HCP)结构的Mg-Zn-Y合金中。从头算分子动力学模拟的原子运动轨迹表明,占据Zn和Y溶质原子最近邻位置的Mg原子经历了局部hcp - fcc跃迁。通过高分辨率扫描透射显微镜和原位同步加速器x射线衍射证实,溶质原子引起的局部晶格畸变使Mg原子能够移动并重新排列成局部FCC构型。我们的模拟对HCP Mg中层错的形成机制及其相变的物理性质提供了深刻的认识。这不仅是至关重要的,因为传统的缺陷,如位错和空位,对Mg及其合金的变形很重要,而且因为它们可以作为一种潜在的新方法来设计先进的Mg合金,当缺陷可以用来促进。
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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