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Quantum mechanical force fields for condensed phase molecular simulations

机译:凝聚相分子模拟的量子力学力场

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摘要

Molecular simulations are powerful tools for providing atomic-level details into complex chemical and physical processes that occur in the condensed phase. For strongly interacting systems where quantum many-body effects are known to play an important role, density-functional methods are often used to provide the model for the potential energy used to drive dynamics. These methods, however, suffer from two major drawbacks. First, they are often too computationally intensive to practically apply to large systems over long time scales, limiting their scope of application. Second, there remain challenges for these models to obtain the necessary level of accuracy for weak non-bonded interactions to obtain quantitative accuracy for a wide range of condensed phase properties. Quantum mechanical force fields (QMFFs) provide a potential solution to both of these limitations. In this review, we address recent advances in the development of QMFFs for condensed phase simulations. In particular, we examine the development of QMFF models using both approximate and ab initio density-functional models, the treatment of short-ranged non-bonded and long-ranged electrostatic interactions, and stability issues in molecular dynamics calculations. Example calculations are provided for crystalline systems, liquid water, and ionic liquids. We conclude with a perspective for emerging challenges and future research directions.
机译:分子模拟是功能强大的工具,可将原子级的详细信息提供给在冷凝阶段发生的复杂化学和物理过程。对于已知相互作用的量子多体效应起着重要作用的强相互作用系统,经常使用密度泛函方法来提供用于驱动动力学的势能模型。然而,这些方法具有两个主要缺点。首先,它们通常计算量太大,以致于无法长时间长时间地实际应用于大型系统,从而限制了它们的应用范围。其次,这些模型仍然面临挑战,难以获得弱弱非键合相互作用的必要准确度,从而获得各种冷凝相性质的定量准确度。量子机械力场(QMFF)为这两个局限性提供了潜在的解决方案。在这篇综述中,我们介绍了用于凝聚相模拟的QMFF开发的最新进展。特别是,我们研究了使用近似和从头算密度函数模型开发的QMFF模型,短距离非键合和长距离静电相互作用的处理以及分子动力学计算中的稳定性问题。提供了结晶系统,液态水和离子液体的示例计算。我们以对新挑战和未来研究方向的观点作为结束。

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  • 年(卷),期 -1(29),38
  • 年度 -1
  • 页码 383002
  • 总页数 27
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