首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Molecular Simulations of the Structure and Dynamics of Water Confined between Alkanethiol Self-Assembled Monolayer Plates
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Molecular Simulations of the Structure and Dynamics of Water Confined between Alkanethiol Self-Assembled Monolayer Plates

机译:烷硫醇自组装单层板间水的结构和动力学的分子模拟

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摘要

We have studied structural and dynamic properties of water confined between hydrophobic alkanethiol self-assembled monolayers (SAMs) using molecular-dynamics simulations. After quantifying the hydrophobic nature of the SAM surfaces via contact-angle calculations involving water droplets, we analyze the effect that the hydrophobic surfaces have on structural properties of the confined water such as density, tetrahedral ordering, orientational structure at the SAM-water interface, and on dynamical properties via calculation of diffusion coefficients. Both the SPC/E and TIP5P water models have been utilized in the calculations. All of the analyses of the structure and dynamics of water are performed as afunction of separation from the surface with a focus on determining the range of the effect of hydrophobic surfaces on the water film. We show that the effects of the surface are not noticeable at water-film depths of approximately 1 nm for the structural properties examined. However, calculated diffusion coefficients in the plane of the surface indicate the SAMs induce enhancement of water motion clearly beyond 1 nm. While the enhanced lateral diffusion coefficients persist into deeper regions of the water film than any other measure of the hydrophobic effect examined in this work, the range of influence of the surface on the dynamics of water falls dramatically short of the range for hydrophobic interactions measured in some experiments.
机译:我们已经使用分子动力学模拟研究了疏水性链烷硫醇自组装单层(SAMs)之间的水的结构和动力学性质。在通过涉及水滴的接触角计算来量化SAM表面的疏水性之后,我们分析了疏水表面对承压水的结构特性(如密度,四面体有序性,SAM-水界面处的取向结构)的影响,以及通过计算扩散系数获得的动力学特性。 SPC / E和TIP5P水模型都已用于计算中。对水的结构和动力学的所有分析都是根据与表面的分离来进行的,重点是确定疏水表面在水膜上的作用范围。我们表明,对于所检查的结构性能,在大约1 nm的水膜深度处,表面的影响并不明显。但是,计算得出的表面平面扩散系数表明,SAMs明显增强了水运动,超过1 nm。尽管增强的横向扩散系数比其他任何在本研究中研究的疏水作用的测量方法都更持久地保留在水膜的较深区域中,但表面对水动力学的影响范围却大大低于在水中测量的疏水相互作用的范围。一些实验。

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