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冰中的多体相互作用

Many-Body Interactions in Ice.

作者信息

Pham C Huy, Reddy Sandeep K, Chen Karl, Knight Chris, Paesani Francesco

机构信息

Department of Chemistry and Biochemistry, University of California-San Diego , La Jolla, California 92093, United States.

Leadership Computing Facility, Argonne National Laboratory , 9700 South Cass Avenue, Argonne, Illinois 60439, United States.

出版信息

J Chem Theory Comput. 2017 Apr 11;13(4):1778-1784. doi: 10.1021/acs.jctc.6b01248. Epub 2017 Mar 7.

Abstract

Many-body effects in ice are investigated through a systematic analysis of the lattice energies of several proton ordered and disordered phases, which are calculated with different flexible water models, ranging from pairwise additive (q-TIP4P/F) to polarizable (TTM3-F and AMOEBA) and explicit many-body (MB-pol) potential energy functions. Comparisons with available experimental and diffusion Monte Carlo data emphasize the importance of an accurate description of the individual terms of the many-body expansion of the interaction energy between water molecules for the correct prediction of the energy ordering of the ice phases. Further analysis of the MB-pol results, in terms of fundamental energy contributions, demonstrates that the differences in lattice energies between different ice phases are sensitively dependent on the subtle balance between short-range two-body and three-body interactions, many-body induction, and dispersion energy. By correctly reproducing many-body effects at both short range and long range, it is found that MB-pol accurately predicts the energetics of different ice phases, which provides further support for the accuracy of MB-pol in representing the properties of water from the gas to the condensed phase.

摘要

通过对几个质子有序和无序相的晶格能进行系统分析,研究了冰中的多体效应。这些晶格能是用不同的灵活水模型计算得出的,从成对加和(q-TIP4P/F)到可极化(TTM3-F和AMOEBA)以及显式多体(MB-pol)势能函数。与现有实验和扩散蒙特卡罗数据的比较强调了准确描述水分子间相互作用能多体展开中各个项对于正确预测冰相能量排序的重要性。根据基本能量贡献对MB-pol结果进行的进一步分析表明,不同冰相之间晶格能的差异敏感地依赖于短程两体和三体相互作用、多体诱导和色散能之间的微妙平衡。通过正确再现短程和长程的多体效应,发现MB-pol准确地预测了不同冰相的能量学,这为MB-pol在表征从气相到凝聚相的水的性质方面的准确性提供了进一步支持。

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