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Solid-liquid coexistence in small systems: A statistical method to calculate melting temperatures

机译:小系统中的固液共存:计算熔化温度的统计方法

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摘要

We propose an efficient and accurate scheme to calculate the melting point (MP) of materials. This method is based on the statistical analysis of small-size coexistence molecular dynamics simulations. It eliminates the risk of metastable superheated solid in the fast-heating method, while also significantly reducing the computer cost relative to the traditional large-scale coexistence method. Using empirical potentials, we validate the method and systematically study the finite-size effect on the calculated MPs. The method converges to the exact result in the limit of large system size. An accuracy within 100 K in MP is usually achieved when simulation contains more than 100 atoms. Density functional theory examples of tantalum, high-pressure sodium, and ionic material NaCl are shown to demonstrate the accuracy and flexibility of the method in its practical applications. The method serves as a promising approach for large-scale automated material screening in which the MP is a design criterion.
机译:我们提出一种有效而准确的方案来计算材料的熔点(MP)。该方法基于小尺寸共存分子动力学模拟的统计分析。与传统的大规模共存方法相比,它消除了快速加热方法中亚稳态过热固体的风险,同时还大大降低了计算机成本。利用经验潜力,我们验证了该方法并系统地研究了所计算MP的有限尺寸效应。该方法收敛到精确结果的大系统规模的限制。当模拟包含100个以上的原子时,MP中的精度通常可达到100K。钽,高压钠和离子材料NaCl的密度泛函理论实例显示了该方法在实际应用中的准确性和灵活性。该方法是大规模自动化材料筛选的一种有前途的方法,其中MP是设计标准。

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