A unified approach for calculating free energies of liquid and defective crystals based on thermodynamic integration.

Jinping Luo, Chenyang Zhou, Qihang Li, Lijun Liu
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引用次数: 1

Abstract

Free energy calculation is fundamentally important in the research of physics, chemistry, and materials. Thermodynamic integration is the most common way to estimate free energies. In the research, we proposed a unified approach using atomic simulations to calculate the free energies of liquid and defective crystals. The new approach is based on thermodynamic integration using two alchemical pathways. Softcore potentials are developed for three-body interatomic potentials to realize the alchemical pathways. Employing the new approach, the free energy of the liquid can be calculated without requiring another reference system. The free energy of the defective crystal can be calculated directly at high temperatures. It avoids the singularity at the integration endpoint caused by the defect diffusion, which is a serious problem in the widely used Einstein crystal method. In addition, the new approach can capture the whole free energy of the defective crystal including the contribution of anharmonic and configurational entropy, which are particularly important at high temperatures. The new method is simple yet effective and can be extended to different materials and more complex liquid and defective crystal systems.
基于热力学积分的液体和缺陷晶体自由能的统一计算方法。
自由能计算在物理、化学和材料研究中具有重要的基础意义。热力学积分是估计自由能最常用的方法。在研究中,我们提出了一种统一的方法,利用原子模拟来计算液体和缺陷晶体的自由能。新的方法是基于热力学集成使用两个炼金术途径。为实现炼金术途径,开发了三体原子间电位的软核电位。采用这种新方法,可以计算液体的自由能,而不需要另一个参考系统。缺陷晶体在高温下的自由能可以直接计算出来。它避免了由于缺陷扩散引起的积分端点奇异性,这是目前广泛使用的爱因斯坦晶体方法中存在的一个严重问题。此外,新方法可以捕获缺陷晶体的全部自由能,包括非调和熵和构型熵的贡献,这在高温下尤为重要。该方法简单有效,可推广到不同材料和更复杂的液体和缺陷晶体体系。
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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