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An analytical bond-order potential for the copper–hydrogen binary system

机译:铜氢二元体系的分析键序势

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摘要

Despite extensive studies in the past, deterioration of mechanical properties due to hydrogen environment exposure remains a serious problem for structural materials. More effective improvement of a material’s resilience requires advanced computational methods to elucidate the fundamental mechanisms of the hydrogen effects. To enable accurate molecular dynamics (MD) studies of the hydrogen effects on metals, we have developed a high-fidelity analytical bond-order potential (BOP) for the copper–hydrogen binary system as a representative case. This potential is available through the publically available MD code LAMMPS. The potential parameters are optimized using an iterative process. First, the potential is fitted to static and reactive properties of a variety of elemental and binary configurations including small clusters and bulk lattices (with coordination varying from 1 to 12). Then the potential is put through a series of rigorous MD simulation tests (e.g., vapor deposition and solidification) that involve chaotic initial configurations. It is demonstrated that this Cu–H BOP not only gives structural and property trends close to those seen in experiments and quantum mechanical calculations, but also predicts the correct phase transformations and chemical reactions in direct MD simulations. The correct structural evolution from chaotic initial states strongly verifies the transferability of the potential. A highly transferable potential is the reason that a well-parameterized analytical BOP can enable MD simulations of metal-hydrogen interactions to reach a fidelity level not achieved in the past.
机译:尽管过去进行了广泛的研究,但是由于暴露于氢环境而导致的机械性能下降仍然是结构材料的严重问题。为了更有效地提高材料的回弹力,需要先进的计算方法来阐明氢效应的基本机理。为了能够对氢对金属的影响进行精确的分子动力学(MD)研究,我们开发了一种高保真度的铜氢二元体系分析键序势(BOP)作为代表。这种潜力可通过公开的MD代码LAMMPS获得。潜在参数使用迭代过程进行了优化。首先,电位适合于各种元素和二元构型的静态和反应特性,包括小簇和块状晶格(配位范围从1到12)。然后通过涉及混沌初始配置的一系列严格的MD模拟测试(例如气相沉积和固化)来发挥潜力。结果表明,这种Cu-H BOP不仅使结构和性能趋势接近于实验和量子力学计算中看到的趋势,而且还预测了直接MD模拟中正确的相变和化学反应。从混沌初始状态正确的结构演变强烈验证了电位的可传递性。高度可转移的潜力是参数良好的分析性BOP可以使金属与氢相互作用的MD模拟达到过去未达到的保真度水平的原因。

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  • 来源
    《Journal of Materials Science》 |2015年第7期|2859-2875|共17页
  • 作者单位

    Mechanics of Materials Department Sandia National Laboratories">(1);

    Radiation and Nuclear Detection Materials and Analysis Department Sandia National Laboratories">(2);

    Materials Chemistry Department Sandia National Laboratories">(3);

    Mechanics of Materials Department Sandia National Laboratories">(1);

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