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Transferability of interatomic potentials for molybdenum and silicon

机译:钼和硅的内部潜力的可转移性

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Interatomic potentials are widely used in computational materials science, in particular for simulations that are too computationally expensive for density functional theory (DFT). Most interatomic potentials have a limited application range and often there is very limited information available regarding their performance for specific simulations. We carried out high-throughput calculations for molybdenum and silicon with DFT and a number of interatomic potentials. We compare the DFT reference calculations and experimental data to the predictions of the interatomic potentials. We focus on a large number of basic materials properties, including the cohesive energy, atomic volume, elastic coefficients, vibrational properties, thermodynamic properties, surface energies and vacancy formation energies, which enables a detailed discussion of the performance of the different potentials. We further analyze correlations between properties as obtained from DFT calculations and how interatomic potentials reproduce these correlations, and suggest a general measure for quantifying the accuracy and transferability of an interatomic potential. From our analysis we do not establish a clearcut ranking of the potentials as each potential has its strengths and weaknesses. It is therefore essential to assess the properties of a potential carefully before application of the potential in a specific simulation. The data presented here will be useful for selecting a potential for simulations of Mo or Si.
机译:在计算材料科学中广泛应用于计算材料科学,特别是对于对于密度泛函理论(DFT)来说太昂贵的模拟。大多数内部潜力具有有限的应用范围,并且通常存在关于其特定模拟性能的非常有限的信息。我们对DFT和许多内部电位进行了钼和硅的高通量计算。我们将DFT参考计算和实验数据进行比较,以预测交织物潜力。我们专注于大量基本材料特性,包括凝聚力,原子体积,弹性系数,振动性质,热力学性质,表面能和空缺形成能量,这使得能够详细讨论不同潜力的性能。我们进一步分析了从DFT计算获得的性质之间的相关性以及交叉组电位如何再现这些相关性,并提出了一种量化用于量化内部潜力的准确性和可转移性的一般措施。从我们的分析,由于每个潜力具有其优势和劣势,我们不会建立潜力的清算排名。因此,必须在在特定模拟中施加潜力之前仔细评估潜力的性质。这里呈现的数据对于选择Mo或Si的模拟可能性是有用的。

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