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纳米尺度疏水性的特征化:分子动力学模拟研究。

Characterizing hydrophobicity at the nanoscale: a molecular dynamics simulation study.

机构信息

Theoretical Chemistry Section, Chemistry Group, Heavy Water Division, Bhabha Atomic Research Centre, Mumbai 400 085, India.

出版信息

J Chem Phys. 2012 Jun 14;136(22):224505. doi: 10.1063/1.4725185.

Abstract

We use molecular dynamics (MD) simulations of water near nanoscopic surfaces to characterize hydrophobic solute-water interfaces. By using nanoscopic paraffin like plates as model solutes, MD simulations in isothermal-isobaric ensemble have been employed to identify characteristic features of such an interface. Enhanced water correlation, density fluctuations, and position dependent compressibility apart from surface specific hydrogen bond distribution and molecular orientations have been identified as characteristic features of such interfaces. Tetrahedral order parameter that quantifies the degree of tetrahedrality in the water structure and an orientational order parameter, which quantifies the orientational preferences of the second solvation shell water around a central water molecule, have also been calculated as a function of distance from the plate surface. In the vicinity of the surface these two order parameters too show considerable sensitivity to the surface hydrophobicity. The potential of mean force (PMF) between water and the surface as a function of the distance from the surface has also been analyzed in terms of direct interaction and induced contribution, which shows unusual effect of plate hydrophobicity on the solvent induced PMF. In order to investigate hydrophobic nature of these plates, we have also investigated interplate dewetting when two such plates are immersed in water.

摘要

我们使用分子动力学 (MD) 模拟水在纳米级表面附近的行为来描述疏水溶质-水界面。通过使用类似石蜡的纳米级平板作为模型溶质,我们在等温和等压系综中进行了 MD 模拟,以确定这种界面的特征。增强的水相关性、密度涨落和位置相关的压缩性,以及表面特定的氢键分布和分子取向,都被确定为这种界面的特征。我们还计算了定量描述水结构中四面体程度的四面体序参量和定量描述围绕中心水分子的第二溶剂化壳水的取向偏好的取向序参量,作为距离平板表面的函数。在表面附近,这两个序参量也对表面疏水性表现出相当大的敏感性。我们还根据直接相互作用和诱导贡献分析了水和表面之间的平均势函数 (PMF) 作为距离的函数,这表明板疏水性对溶剂诱导 PMF 有异常影响。为了研究这些平板的疏水性,我们还研究了当两个这样的平板浸入水中时的板间去湿现象。

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