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Accelerated path-integral simulations using ring-polymer interpolation

机译:使用环聚合物插值加速路径积分模拟

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Imaginary-time path-integral (PI) molecular simulations can be used to calculate exact quantum statistical mechanical properties for complex systems containing many interacting atoms and molecules. The limiting computational factor in a PI simulation is typically the evaluation of the potential energy surface (PES) and forces at each ring-polymer "bead"; for an n-bead ring-polymer, a PI simulation is typically n times greater than the corresponding classical simulation. To address the increased computational effort of PI simulations, several approaches have been developed recently, most notably based on the idea of ring-polymer contraction which exploits either the separation of the PES into short-range and long-range contributions or the availability of a computationally inexpensive PES which can be incorporated to effectively smooth the ring-polymer PES; neither approach is satisfactory in applications to systems modeled by PESs given by on-the-fly ab initio calculations. In this article, we describe a new method, ring-polymer interpolation (RPI), which can be used to accelerate PI simulations without any prior assumptions about the PES. In simulations of liquid water modeled by an empirical PES (or force field) under ambient conditions, where quantum effects are known to play a subtle role in influencing experimental observables such as radial distribution functions, we find that RPI can accurately reproduce the results of fully-converged PI simulations, albeit with far fewer PES evaluations. This approach therefore opens the possibility of large-scale PI simulations using ab initio PESs evaluated on-the-fly without the drawbacks of current methods. Published by AIP Publishing.
机译:假想时间路径积分(PI)分子模拟可用于计算包含许多相互作用原子和分子的复杂系统的精确量子统计学机械性能。 PI模拟中的限制计算因素通常是对每个环聚合物“珠子”的潜在能量表面(PE)和力的评估。对于N-珠圈环 - 聚合物,PI模拟通常比相应的经典模拟大n倍。为了解决PI模拟的增加的计算工作,最近已经开发了几种方法,最值得基于环形聚合物收缩的想法,这利用PE分离到短程和远程贡献或a的可用性可以掺入计算上便宜的PE,以有效地平滑环聚合物PE;在由捕获的AB Initio计算的PES为给出的PES为模型的应用程序中既不令人满意。在本文中,我们描述了一种新的方法,环聚合物插值(RPI),其可用于加速PI模拟而无需任何关于PE的假设。在环境条件下通过经验PES(或力场)模拟的液态水模拟,其中已知量子效应在影响径向分布函数的实验性可观察中发挥微妙作用,我们发现RPI可以准确地再现完全的结果 - 旋转的PI模拟,尽管PES评估较少。因此,这种方法使用现行的AB Initio PES进行大规模PI模拟的可能性,而无需当前方法的缺点。通过AIP发布发布。

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