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Polymorph selection of magnesium under different pressures:A simulation study

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【作者】 刘维吴博强田泽安莫云飞奚廷斐万子义刘让苏刘海蓉

【Author】 Wei Liu;Boqiang Wu;Ze’an Tian;Yunfei Mo;Tingfei Xi;Zhiyi Wan;Rangsu Liu;Hairong Liu;College of Materials Science and Engineering, Hunan University;School of Physics and Microelectronics, Hunan University;School of Electronics and Communication Engineering, Changsha University;School of Materials Science and Engineering, Zhejiang Sci-Tech University;

【通讯作者】 刘海蓉;

【机构】 College of Materials Science and Engineering,Hunan UniversitySchool of Physics and Microelectronics, Hunan UniversitySchool of Electronics and Communication Engineering,Changsha UniversitySchool of Materials Science and Engineering,Zhejiang Sci-Tech University

【摘要】 Molecular dynamics simulations were used to investigate the influence of pressure on the structural properties and dynamics of magnesium(Mg) during rapid solidification. The dynamics analysis revealed that, with an increase in pressure,the dynamics of Mg melt slowed down sharply and the dynamical heterogeneities increased, leading to a denser structure.Atom-level structural analysis using the cluster-type index method suggested that the predominant structure transformed from hexagonal closed-packed to face-centered cubic with increasing pressure from 0 GPa to 5 GPa, and then transformed to the A15 complex crystal structure as the pressure increased above 10 GPa. In addition, the nature of polymorph selection was investigated by analyzing the phonon dispersion of Mg under different pressures. These findings provide a novel insight into polymorphic transitions of Mg under pressure and guide the selection of Mg polymorphs for practical applications.

【Abstract】 Molecular dynamics simulations were used to investigate the influence of pressure on the structural properties and dynamics of magnesium(Mg) during rapid solidification. The dynamics analysis revealed that, with an increase in pressure,the dynamics of Mg melt slowed down sharply and the dynamical heterogeneities increased, leading to a denser structure.Atom-level structural analysis using the cluster-type index method suggested that the predominant structure transformed from hexagonal closed-packed to face-centered cubic with increasing pressure from 0 GPa to 5 GPa, and then transformed to the A15 complex crystal structure as the pressure increased above 10 GPa. In addition, the nature of polymorph selection was investigated by analyzing the phonon dispersion of Mg under different pressures. These findings provide a novel insight into polymorphic transitions of Mg under pressure and guide the selection of Mg polymorphs for practical applications.

【基金】 Project supported by the National Key Research and Development Program of China (Grant No. 2017YFGX090043)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2022年01期
  • 【分类号】TG146.22
  • 【下载频次】11
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