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倒易空间中的微扰展开:连接分子相互作用的微观与介观描述

Perturbative Expansion in Reciprocal Space: Bridging Microscopic and Mesoscopic Descriptions of Molecular Interactions.

作者信息

Jin Jaehyeok, Reichman David R

机构信息

Department of Chemistry, Columbia University, 3000 Broadway, New York, New York 10027, United States.

出版信息

J Phys Chem B. 2024 Feb 1;128(4):1061-1078. doi: 10.1021/acs.jpcb.3c06048. Epub 2024 Jan 17.

Abstract

Determining the Fourier representation of various molecular interactions is important for constructing density-based field theories from a microscopic point of view, enabling a multiscale bridge between microscopic and mesoscopic descriptions. However, due to the strongly repulsive nature of short-ranged interactions, interparticle interactions cannot be formally defined in Fourier space, which renders coarse-grained (CG) approaches in -space somewhat ambiguous. In this paper, we address this issue by designing a perturbative expansion of pair interactions in reciprocal space. Our perturbation theory, starting from reciprocal space, elucidates the microscopic origins underlying zeroth-order (long-range attractions) and divergent repulsive interactions from higher order contributions. We propose a systematic framework for constructing a faithful Fourier-space representation of molecular interactions, capturing key structural correlations in various systems, including simple model systems and molecular CG models of liquids. Building upon the Ornstein-Zernike equation, our approach can be combined with appropriate closure relations, and to further improve the closure approximations, we develop a bottom-up parameterization strategy for inferring the bridge function from microscopic statistics. By incorporating the bridge function into the Fourier representation, our findings suggest a systematic, bottom-up approach to performing coarse-graining in reciprocal space, leading to the systematic construction of a bottom-up classical field theory of complex aqueous systems.

摘要

从微观角度确定各种分子相互作用的傅里叶表示对于构建基于密度的场论很重要,这能够在微观和介观描述之间建立多尺度桥梁。然而,由于短程相互作用具有强烈的排斥性质,粒子间相互作用在傅里叶空间中无法正式定义,这使得在实空间中的粗粒化(CG)方法有些模糊。在本文中,我们通过设计对易空间中对相互作用的微扰展开来解决这个问题。我们的微扰理论从对易空间出发,阐明了零阶(长程吸引)的微观起源以及高阶贡献产生的发散排斥相互作用。我们提出了一个系统框架,用于构建分子相互作用的忠实傅里叶空间表示,捕捉各种系统中的关键结构相关性,包括简单模型系统和液体的分子CG模型。基于奥恩斯坦 - 泽尼克方程,我们的方法可以与适当的封闭关系相结合,为了进一步改进封闭近似,我们开发了一种自下而上的参数化策略,用于从微观统计推断桥函数。通过将桥函数纳入傅里叶表示,我们的研究结果提出了一种在对易空间中进行粗粒化的系统的、自下而上的方法,从而系统地构建复杂水体系的自下而上的经典场论。

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