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软物质自适应多尺度分子动力学模拟的最新进展。

Recent progress in adaptive multiscale molecular dynamics simulations of soft matter.

机构信息

Department of Chemistry, University of Texas at Dallas, 800 West Campbell Road, Richardson, TX 75080, USA.

出版信息

Phys Chem Chem Phys. 2010 Oct 21;12(39):12401-14. doi: 10.1039/c004111d. Epub 2010 Aug 24.

Abstract

Understanding mesoscopic phenomena in terms of the fundamental motions of atoms and electrons poses a severe challenge for molecular simulation. This challenge is being met by multiscale modeling techniques that aim to bridge between the microscopic and mesoscopic time and length scales. In such techniques different levels of theory are combined to describe a system at a number of scales or resolutions. Here we review recent advancements in adaptive hybrid simulations, in which the different levels are used in separate spatial domains and matter can diffuse from one region to another with an accompanying resolution change. We discuss what it means to simulate such a system, and how to enact the resolution changes. We show how to construct efficient adaptive hybrid quantum mechanics/molecular mechanics (QM/MM) and atomistic/coarse grain (AA/CG) molecular dynamics methods that use an intermediate healing region to smoothly couple the regions together. This coupling is formulated to use only the native forces inherent to each region. The total energy is conserved through the use of auxiliary bookkeeping terms. Error control, and the choice of time step and healing region width, is obtained by careful analysis of the energy flow between the different representations. We emphasize the CG → AA reverse mapping problem and show how this problem is resolved through the use of rigid atomistic fragments located within each CG particle whose orientation is preconditioned for a possible resolution change through a rotational dynamics scheme. These advancements are shown to enable the adaptive hybrid multiscale molecular dynamics simulation of macromolecular soft matter systems.

摘要

从原子和电子的基本运动来理解介观现象对分子模拟提出了严峻的挑战。多尺度建模技术旨在弥合微观和介观时间和长度尺度之间的差距,正在应对这一挑战。在这种技术中,不同层次的理论被结合起来,在多个尺度或分辨率上描述一个系统。在这里,我们回顾了自适应混合模拟的最新进展,其中不同的层次在单独的空间域中使用,物质可以从一个区域扩散到另一个区域,同时伴随着分辨率的变化。我们讨论了模拟这样一个系统意味着什么,以及如何进行分辨率的变化。我们展示了如何构建有效的自适应混合量子力学/分子力学(QM/MM)和原子/粗粒(AA/CG)分子动力学方法,这些方法使用中间愈合区域来平滑地将区域连接在一起。这种耦合的构建方式是使用每个区域固有的本机力。通过使用辅助簿记项来保持总能量守恒。通过仔细分析不同表示之间的能量流,可以实现误差控制以及时间步长和愈合区域宽度的选择。我们强调 CG→AA 反向映射问题,并展示如何通过使用位于每个 CG 粒子内的刚性原子片段来解决这个问题,这些片段的方向通过旋转动力学方案预先调节,以便可能发生分辨率变化。这些进展使得能够对大分子软物质系统进行自适应混合多尺度分子动力学模拟。

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