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The structural evolution and abnormal bonding ways of the Zr80Pt20 metallic liquid during rapid solidification under high pressure

机译:高压下快速凝固过程中ZR80PT20金属液体的结构演化与异常粘合方式

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The structural evolutions and abnormal bonding ways of the Zr80Pt20 binary alloy during rapid solidification under different pressures from 0 to 120 GPa have been investigated by classical molecular dynamics simulations in conjunction with the embedding atom method. The pair distribution function, the coordination number, the Warren-Cowley parameter, the bond length and the pair analysis technique are used to reveal the structural evolution of the Zr80Pt20 solidified under normal and high pressures. Persuasive evidence indicates that the applied pressure strongly affects the vitrification (for 0 <= P <= 20 and 90 <= P <= 120 GPa) and crystallization (for 30 <= P <= 80 GPa) processes of the metallic liquid and causes significant changes in the microstructure of the system. Interestingly, we have observed that the crystallization for the Zr80Pt20 system is associated with volume expansion between 50 and 80 GPa, in contrast to the volume contraction observed under 30 and 40 GPa. The results of the atomic structure analysis show that there is an unexpected shortening of Zr-Zr bonds under high pressures, which is related to the change of the atomic packing in the Zr80Pt20 alloy from loose to dense with increasing pressure. The results of the analysis show that the bonds between Zr-Zr and Pt-Pt pairs can be shortened more easily than the bonds between Zr-Pt pairs at high pressures and also the clustering behaviors of Zr-Zr or Pt-Pt bonds reveals the presence of composition segregation. This study presents encouraging findings for the experimental investigation of glass transition and crystallization processes in Zr-Pt metallic liquids during rapid cooling and under high pressure.
机译:通过经典分子动力学模拟与嵌入原子法一起研究了在不同压力下的快速凝固过程中ZR80PT20二元合金的结构演变和异常键合方法。该对分布函数,协调数量,沃伦 - 考麦参数,键合长度和对分析技术用于揭示ZR80PT20在正常和高压下固化的结构演变。有说服力的证据表明施加的压力强烈影响玻璃化(对于0 <= P <= 20和90 <= P <= 120gPA)和金属液体的结晶(持续30 <= P <= 80GPa)方法和原因系统微观结构的显着变化。有趣的是,我们已经观察到ZR80PT20系统的结晶与50至80GPa之间的体积膨胀相关,与30和40GPa下观察到的体积收缩相反。原子结构分析的结果表明,在高压下存在意外缩短Zr-Zr键,其与ZR80PT20合金中原子填料的变化与随着压力的增加,ZR80PT20合金的变化有关。分析结果表明,Zr-Zr和Pt-Pt对之间的键可以比在高压下的Zr-Pt对之间的键之间更容易缩短,并且Zr-Zr或Pt-Pt键的聚类行为揭示了组合物偏析的存在。本研究介绍了在快速冷却和高压下Zr-Pt金属液体中玻璃化转变和结晶过程的实验研究的令人愉快的研究结果。

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