论文标题

通过机器学习潜在模拟,在高温和高压下alpha-U的晶格动力学和弹性特性

Lattice dynamics and elastic properties of alpha-U at high-temperature and high-pressure by machine learning potential simulations

论文作者

Wang, Hao, Pan, Xiao-Long, Wang, Yu-Feng, Chen, Xiang-Rong, Wang, Yi-Xian, Geng, Hua Y.

论文摘要

很难通过实验研究材料在高压和温度下的物理特性。理论模拟可以弥补这一缺陷。当前,使用机器学习力场的大型模拟正在越来越受欢迎。作为重要的核能物质,铀在极端条件下的物理特性的演变尚不清楚。本文中,我们在Alpha-U上训练了精确的机器学习力场,并预测了高压和温度下的晶格动力学和弹性特性。力场与从头算分子动力学(AIMD)和实验结果非常吻合,并且比经典电位表现出更高的准确性。基于高温晶格动力学研究,我们首先介绍了$σ$ 4光学模式的Kohn异常行为的温度压力范围。声子光谱函数分析表明,α-U的语音非谐声非常弱。我们预测,单晶弹性常数C44,C55,C66,Polycrystalline Modulus(E,G)和PolyCryStalline声音速度($ C_L $,$ C_S $)具有强大的加热诱导的软化。所有弹性模量均表现出压缩引起的硬化行为。泊松比表明,在高压和温度下很难压缩α-U。此外,我们观察到,在高压和温度下,材料变得更加各向异性。 α-U的准确预测证明了该方法的可靠性。这种多功能方法促进了对其他复杂金属材料的研究。

Studying the physical properties of materials under high pressure and temperature through experiments is difficult. Theoretical simulations can compensate for this deficiency. Currently, large-scale simulations using machine learning force fields are gaining popularity. As an important nuclear energy material, the evolution of the physical properties of uranium under extreme conditions is still unclear. Herein, we trained an accurate machine learning force field on alpha-U and predicted the lattice dynamics and elastic properties at high pressures and temperatures. The force field agrees well with the ab initio molecular dynamics (AIMD) and experimental results, and it exhibits higher accuracy than classical potentials. Based on the high-temperature lattice dynamics study, we first present the temperature-pressure range in which the Kohn anomalous behavior of the $Σ$4 optical mode exists. Phonon spectral function analysis showed that the phonon anharmonicity of alpha-U is very weak. We predict that the single-crystal elastic constants C44, C55, C66, polycrystalline modulus (E,G), and polycrystalline sound velocity ($C_L$,$C_S$) have strong heating-induced softening. All the elastic moduli exhibited compression-induced hardening behavior. The Poisson's ratio shows that it is difficult to compress alpha-U at high pressures and temperatures. Moreover, we observed that the material becomes substantially more anisotropic at high pressures and temperatures. The accurate predictions of alpha-U demonstrate the reliability of the method. This versatile method facilitates the study of other complex metallic materials.

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