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首页> 外文期刊>The Journal of Chemical Physics >Path integral molecular dynamics within the grand canonical-like adaptive resolution technique: Simulation of liquid water
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Path integral molecular dynamics within the grand canonical-like adaptive resolution technique: Simulation of liquid water

机译:大正则经典自适应分辨率技术中的路径积分分子动力学:液态水模拟

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摘要

Quantum effects due to the spatial delocalization of light atoms are treated in molecular simulation via the path integral technique. Among several methods, Path Integral (PI) Molecular Dynamics (MD) is nowadays a powerful tool to investigate properties induced by spatial delocalization of atoms; however, computationally this technique is very demanding. The above mentioned limitation implies the restriction of PIMD applications to relatively small systems and short time scales. One of the possible solutions to overcome size and time limitation is to introduce PIMD algorithms into the Adaptive Resolution Simulation Scheme (AdResS). AdResS requires a relatively small region treated at path integral level and embeds it into a large molecular reservoir consisting of generic spherical coarse grained molecules. It was previously shown that the realization of the idea above, at a simple level, produced reasonable results for toy systems or simple/test systems like liquid parahydrogen. Encouraged by previous results, in this paper, we show the simulation of liquid water at room conditions where AdResS, in its latest and more accurate Grand-Canonical-like version (GC-AdResS), is merged with two of the most relevant PIMD techniques available in the literature. The comparison of our results with those reported in the literature and/or with those obtained from full PIMD simulations shows a highly satisfactory agreement. (C) 2015 AIP Publishing LLC.
机译:通过光路积分技术,在分子模拟中处理了由于轻原子的空间离域而产生的量子效应。在几种方法中,路径积分(PI)分子动力学(MD)如今已成为研究由原子的空间离域引起的性质的强大工具。但是,在计算上,此技术要求很高。上述限制意味着将PIMD应用程序限制在相对较小的系统和较短的时间范围内。克服大小和时间限制的可能解决方案之一是将PIMD算法引入自适应分辨率仿真方案(AdResS)。 AdResS需要在路径积分水平上处理一个相对较小的区域,并将其嵌入由通用球形粗粒分子组成的大型分子库中。以前表明,上述想法的简单实现,对于玩具系统或简单/测试系统(如液态对氢)而言,产生了合理的结果。受先前结果的鼓励,在本文中,我们展示了室温下的液态水的模拟,其中最新且更准确的类似大正则规范版本(GC-AdResS)的AdResS与两种最相关的PIMD技术合并了在文献中可用。我们的结果与文献报道的结果和/或从完整的PIMD模拟获得的结果进行比较,显示出高度满意的一致性。 (C)2015 AIP Publishing LLC。

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