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MD 模拟研究 Pt 和 Cu 表面上水的纳米结构和动力学。

Nanoscale Structure and Dynamics of Water on Pt and Cu Surfaces from MD Simulations.

机构信息

Department of Materials Science and Engineering , The University of Florida , 1698 Gale Lemerand Drive , Gainesville , Florida 32603 , United States.

Department of Materials Science and Engineering , The Pennsylvania State University , 1 Pollock Road , State College , Pennsylvania 16801 , United States.

出版信息

Langmuir. 2018 Oct 2;34(39):11905-11911. doi: 10.1021/acs.langmuir.8b02315. Epub 2018 Sep 20.

DOI:10.1021/acs.langmuir.8b02315
PMID:30169963
Abstract

The interaction of liquid water with Pt(111) is investigated with classical molecular dynamics (MD) simulations, where the forces are determined using the third-generation charge optimized many-body (COMB3) interatomic potential. In cases of sub-monolayer water coverage, the parameterized empirical potential predicts experimentally observed and energetically favorable √37 and √39 reconstructed water structures with "575757" di-interstitial defects. At both sub-monolayer and multilayer water coverages, the structure of the first wetting layer of liquid water on Pt(111) exhibits a characteristic distribution where the molecules form two distinct buckled layers as a result of the interplay between water-metal adsorption and water-water hydrogen bonds. The dynamic spreading rate of water nanodroplets on large Pt surfaces (>200 nm) characterized by molecular kinetic spreading theory is an order of magnitude slower than the molecular kinetic rate of the same droplet on close-packed Cu surfaces due to variation in molecular distributions at the water-metal interface. These nanoscale MD simulation predictions using the COMB3 interatomic potential demonstrate the capability of capturing both many-body interactions between HO and Pt or Cu and hydrogen bonding in liquid water.

摘要

采用经典分子动力学(MD)模拟研究了液态水与 Pt(111) 的相互作用,其中力是使用第三代电荷优化多体(COMB3)原子间势确定的。在亚单层水覆盖的情况下,参数化经验势预测了实验观察到的和能量有利的 √37 和 √39 重构水结构,具有“575757”双间隙缺陷。在亚单层和多层水覆盖的情况下,Pt(111)上第一层液态水的润湿层结构表现出特征分布,其中分子由于水-金属吸附和水-氢键之间的相互作用形成两个明显的褶皱层。通过分子动力学理论表征的大型 Pt 表面(>200nm)上水纳米液滴的动态扩展速率比相同液滴在密排 Cu 表面上的分子动力学速率慢一个数量级,这是由于水-金属界面处分子分布的变化。这些使用 COMB3 原子间势的纳米级 MD 模拟预测表明,该势能够捕获 HO 与 Pt 或 Cu 之间的多体相互作用以及液态水中的氢键。

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