Many-Body Effects in Aqueous Systems: Synergies Between Interaction Analysis Techniques and Force Field Development.

IF 11.7 1区 化学 Q1 CHEMISTRY, PHYSICAL
Joseph P Heindel, Kristina M Herman, Sotiris S Xantheas
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引用次数: 4

Abstract

Interaction analysis techniques, including the many-body expansion (MBE), symmetry-adapted perturbation theory, and energy decomposition analysis, allow for an intuitive understanding of complex molecular interactions. We review these methods by first providing a historical context for the study of many-body interactions and discussing how nonadditivities emerge from Hamiltonians containing strictly pairwise-additive interactions. We then elaborate on the synergy between these interaction analysis techniques and the development of advanced force fields aimed at accurately reproducing the Born-Oppenheimer potential energy surface. In particular, we focus on ab initio-based force fields that aim to explicitly reproduce many-body terms and are fitted to high-level electronic structure results. These force fields generally incorporate many-body effects through (a) parameterization of distributed multipoles, (b) explicit fitting of the MBE, (c) inclusion of many-atom features in a neural network, and (d) coarse-graining of many-body terms into an effective two-body term. We also discuss the emerging use of the MBE to improve the accuracy and speed of ab initio molecular dynamics.

水系统中的多体效应:相互作用分析技术和力场发展之间的协同作用。
相互作用分析技术,包括多体展开(MBE)、对称适应微扰理论和能量分解分析,可以直观地理解复杂的分子相互作用。我们回顾了这些方法,首先提供了多体相互作用研究的历史背景,并讨论了非可加性是如何从严格包含对加性相互作用的哈密顿量中产生的。然后,我们详细阐述了这些相互作用分析技术与旨在精确再现Born-Oppenheimer势能面的先进力场的发展之间的协同作用。我们特别关注基于从头算的力场,其目的是明确地再现多体项,并适合于高级电子结构结果。这些力场通常通过(a)分布多极的参数化,(b) MBE的显式拟合,(c)在神经网络中包含多原子特征,以及(d)将多体项粗粒化为有效的两体项来整合多体效应。我们还讨论了MBE在提高从头算分子动力学的准确性和速度方面的新应用。
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来源期刊
CiteScore
28.00
自引率
0.00%
发文量
21
期刊介绍: The Annual Review of Physical Chemistry has been published since 1950 and is a comprehensive resource for significant advancements in the field. It encompasses various sub-disciplines such as biophysical chemistry, chemical kinetics, colloids, electrochemistry, geochemistry and cosmochemistry, chemistry of the atmosphere and climate, laser chemistry and ultrafast processes, the liquid state, magnetic resonance, physical organic chemistry, polymers and macromolecules, and others.
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