恒电位分子动力学模拟的理论与实践

S. Tee
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引用次数: 0

摘要

在分子水平上理解电极-电解质界面对于电化学的进一步发展至关重要,在社会上有许多实际应用。分子动力学(MD)是获取分子级细节的自然选择技术,而恒定电位法(CPM)能够在物理上真实且计算上可行地模拟具有指定电位差的导电电极之间的大型系统。因此,本综述旨在向读者介绍CPM的最重要概念,如动态电荷更新方法,恒定势系综中的重要采样,以及计算远程静电相互作用的最佳周期边界条件。利用CPM研究了室温离子液体超级电容器的电容及其与带电电极附近电解质层的关系,充放电机理和动力学,以及纳米孔电极在实现离子纳米约束和超离子状态中的应用。这些领域突出了CPM MD的灵活性,以及在研究复杂的电解质-电极界面时,通过更简单的固定电荷方法实现的额外物理真实感。尽管如此,有许多潜在的有效方法可以进一步优化CPM MD模拟,以及许多应用该技术可以产生新颖有趣结果的领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theory and Practice in Constant Potential Molecular Dynamics Simulations
Understanding electrode–electrolyte interfaces at the molecular level is crucial for further progress in electrochemistry, with numerous practical applications in store for society. Molecular dynamics (MD) is a natural technique of choice for accessing molecular-level detail, and the constant potential method (CPM) enables physically realistic and computationally feasible simulations of large systems between conductive electrodes with a specified potential difference. As such, this review aims to introduce readers to the most important concepts of the CPM, such as dynamic charge updating methods, importance sampling in the constant potential ensemble, and optimal periodic boundary conditions for calculating long-range electrostatic interactions. The CPM has been used to study the capacitance of room-temperature ionic liquid supercapacitors and the relationship with electrolyte layering near charged electrodes, the mechanisms and kinetics of charging and discharging, and the utility of nanoporous electrodes in achieving ionic nanoconfinement and superionic states. These areas highlight the flexibility of CPM MD and the additional physical realism that is achieved over simpler fixed charge methods when studying complex electrolyte–electrode interfaces. Nonetheless, there are many potentially fruitful ways to further optimize CPM MD simulations, alongside numerous areas where the application of this technique could yield novel and interesting results.
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