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数据驱动多体势预测溶液中Na和K离子的水合结构

Hydration Structure of Na and K Ions in Solution Predicted by Data-Driven Many-Body Potentials.

作者信息

Zhuang Debbie, Riera Marc, Zhou Ruihan, Deary Alexander, Paesani Francesco

机构信息

Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, California92093, United States.

Materials Science and Engineering, University of California San Diego, La Jolla, California92093, United States.

出版信息

J Phys Chem B. 2022 Nov 17;126(45):9349-9360. doi: 10.1021/acs.jpcb.2c05674. Epub 2022 Nov 3.

Abstract

The hydration structure of Na and K ions in solution is systematically investigated using a hierarchy of molecular models that progressively include more accurate representations of many-body interactions. We found that a conventional empirical pairwise additive force field that is commonly used in biomolecular simulations is unable to reproduce the extended X-ray absorption fine structure (EXAFS) spectra for both ions. In contrast, progressive inclusion of many-body effects rigorously derived from the many-body expansion of the energy allows the MB-nrg potential energy functions (PEFs) to achieve nearly quantitative agreement with the experimental EXAFS spectra, thus enabling the development of a molecular-level picture of the hydration structure of both Na and K in solution. Since the MB-nrg PEFs have already been shown to accurately describe isomeric equilibria and vibrational spectra of small ion-water clusters in the gas phase, the present study demonstrates that the MB-nrg PEFs effectively represent the long-sought-after models able to correctly predict the properties of ionic aqueous systems from the gas to the liquid phase, which has so far remained elusive.

摘要

利用一系列分子模型系统地研究了溶液中Na和K离子的水合结构,这些模型逐步包含了对多体相互作用更精确的描述。我们发现,生物分子模拟中常用的传统经验性成对加和力场无法重现这两种离子的扩展X射线吸收精细结构(EXAFS)光谱。相比之下,逐步纳入从能量的多体展开严格推导出来的多体效应,使得MB-nrg势能函数(PEF)能够与实验EXAFS光谱达成近乎定量的一致,从而能够构建溶液中Na和K水合结构的分子水平图像。由于MB-nrg PEF已被证明能够准确描述气相中小离子-水簇的异构平衡和振动光谱,本研究表明,MB-nrg PEF有效地代表了长期以来寻求的能够正确预测从气相到液相离子水体系性质的模型,而这一点迄今为止一直难以实现。

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