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通过缩放溶剂-溶质吸引力理解正辛烷在石墨烯附近的行为。

Understanding n-Octane Behavior near Graphene with Scaled Solvent-Solute Attractions.

作者信息

Wu Eugene, Garde Shekhar

机构信息

Howard P. Isermann Department of Chemical and Biological Engineering, Center for Biotechnology and Interdisciplinary Studies, and Center for Materials, Devices, and Integrated Systems, Rensselaer Polytechnic Institute , Troy, New York 12180, United States.

出版信息

J Phys Chem B. 2016 Mar 3;120(8):2033-42. doi: 10.1021/acs.jpcb.5b10262. Epub 2016 Feb 3.

Abstract

We employ molecular dynamics simulations of n-octane near a layered graphene surface to study the related phenomena of solvation, density fluctuations, wettability, and structure and dynamics of n-octane molecules in the inhomogeneous interfacial environment. That solvation in bulk n-octane displays a lengthscale-dependent crossover similar to that of hydrophobic solvation in water is known. Here we show that, near an extended graphene interface having attractive interactions with n-octane, lengthscale-dependent solvation is similar to that in the bulk and displays a small to large crossover. However, as the n-octane-graphene interactions are reduced to make the surface increasingly solvophobic, the crossover behavior is modulated and essentially absent near the most solvophobic surfaces, similar to that in water near hydrophobic interfaces. We show that the macroscopic measure of wettability, namely, the contact angle, characterizes n-octane-graphene coupling over a limited range of attractions. In contrast, molecular measures such as the free energy of cavity formation or the local compressibility in the interfacial region provide an effective measure of this coupling over a broader range of attractions. Finally, as n-octane-graphene attractions are increased, the n-octane liquid displays a wetting transition and corresponding change from sigmoidal to layered density profile. Analysis of the local structure shows that n-octane molecules prefer approximately linear conformations and surface-parallel orientations near the graphene surface, and their translational dynamics slow down with increasing n-octane-graphene attractions. Our study highlights molecular scale behavior of n-octane molecules that is relevant to understanding nanoparticle-solvent coupling in composite materials with enhanced mechanical or thermal properties.

摘要

我们采用正辛烷在层状石墨烯表面附近的分子动力学模拟,来研究非均匀界面环境中正辛烷的溶剂化、密度涨落、润湿性以及分子结构和动力学等相关现象。已知体相正辛烷中的溶剂化表现出与水中疏水溶剂化类似的长度尺度依赖性转变。在此我们表明,在与正辛烷具有吸引相互作用的扩展石墨烯界面附近,长度尺度依赖性溶剂化与体相中的情况相似,呈现从小到 大的转变。然而,随着正辛烷 - 石墨烯相互作用减弱,使表面越来越具有疏溶剂性,这种转变行为受到调制,在最具疏溶剂性的表面附近基本不存在,这与疏水界面附近水中的情况类似。我们表明,润湿性的宏观度量,即接触角,在有限的吸引力范围内表征正辛烷 - 石墨烯的耦合。相比之下,诸如空穴形成自由能或界面区域局部压缩性等分子度量,在更广泛的吸引力范围内提供了这种耦合的有效度量。最后,随着正辛烷 - 石墨烯吸引力增加,正辛烷液体呈现润湿性转变以及相应的从 S 形到层状密度分布的变化。对局部结构的分析表明,正辛烷分子在石墨烯表面附近倾向于近似线性的构象和与表面平行的取向,并且它们的平动动力学随着正辛烷 - 石墨烯吸引力的增加而减慢。我们的研究突出了正辛烷分子的分子尺度行为,这对于理解具有增强机械或热性能的复合材料中的纳米颗粒 - 溶剂耦合至关重要。

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