Lattice dynamics and free energies of Fe-V alloys with thermal and chemical disorder.

IF 2.3 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
Cesar Diaz-Caraveo, Bimal K C, Jorge A Muñoz San Martín
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引用次数: 0

Abstract

Molecular dynamics simulations of Fe-V binary alloys with body-centered cubic as the underlying lattice were performed using a classical potential for chemically ordered and disordered states at finite temperatures for a common set of volumes. The equation of state was fitted to the computational data to obtain temperature- and chemical-order-dependent state functions via the Moruzzi-Janak-Schwarz approximation. Additionally, vibrational entropies that account for both thermal and chemical disorder were calculated for the equiatomic compositions from phonon density-of-states curves computed using effective force constants obtained from fits to the simulations. The latter predicts that the vibrational entropy at room temperature at equiatomicity is higher for the ordered phase than for the solid solution, a peculiar behavior previously observed experimentally. The internal energy of mixing favors ordering at all compositions, with a maximum at equiatomicity that decreases as the solute concentration decreases. The configurational entropy contribution to the free energy of mixing is almost entirely responsible for the stability of the high-temperature disordered phase.

具有热紊乱和化学紊乱的 Fe-V 合金的晶格动力学和自由能。
采用经典的化学有序态和无序态势能,在有限温度下对以体心立方为底层晶格的 Fe-V 二元合金进行了分子动力学模拟。通过莫鲁兹-扬纳克-施瓦茨近似,将状态方程拟合到计算数据中,从而获得与温度和化学阶次相关的状态函数。此外,还根据声子状态密度曲线计算了等原子成分的振动熵,该振动熵同时考虑了热紊乱和化学紊乱。后者预测有序相在室温下的等原子振动熵要高于固溶体,这是之前在实验中观察到的一种奇特行为。在所有成分下,混合内能都有利于有序化,在平衡时达到最大值,并随着溶质浓度的降低而减小。混合自由能的构型熵几乎完全是高温无序相稳定的原因。
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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来源期刊
Journal of Physics: Condensed Matter
Journal of Physics: Condensed Matter 物理-物理:凝聚态物理
CiteScore
5.30
自引率
7.40%
发文量
1288
审稿时长
2.1 months
期刊介绍: Journal of Physics: Condensed Matter covers the whole of condensed matter physics including soft condensed matter and nanostructures. Papers may report experimental, theoretical and simulation studies. Note that papers must contain fundamental condensed matter science: papers reporting methods of materials preparation or properties of materials without novel condensed matter content will not be accepted.
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