Chowdhary Janamejaya, Ladanyi Branka M
Department of Chemistry, Colorado State University, Fort Collins, 80523-1872, USA.
J Phys Chem B. 2009 Apr 2;113(13):4045-53. doi: 10.1021/jp8061509.
The dynamics of hydrogen bond formation and breakage for water in the vicinity of water/hydrocarbon liquid interfaces is studied using molecular dynamics simulations. Several liquid alkanes are considered as the hydrocarbon phase in order to determine the effects of their chain length and extent of branching on the properties of the adjacent water phase. In addition to defining the interface location in terms of the laboratory-frame density profiles, the effects of interfacial fluctuations are considered by locating the interface in terms of the proximity of the molecules of the other phase. We find that the hydrogen bond dynamics of interfacial water is weakly influenced by the identity of the hydrocarbon phase and by capillary waves. In addition to calculating hydrogen bond time correlations, we examine how the hydrogen bond dynamics depend on local coordination and determine the extent of cooperativity in the population relaxation of the hydrogen bonds that a given molecule participates in. The contributions of translational diffusion and reorientation of molecular O-H bonds to the mechanism of hydrogen bond breakage and reformation are investigated. In previous work, we have shown that rotation of the principal axes of water is anisotropic at the interface and depends on the initial orientation of the molecule relative to the interface. Here, we extend this analysis to the reorientation of the O-H vector and to hydrogen bond time correlation. We find that hydrogen bond dynamics are also sensitive to the initial orientation of the molecules participating in the hydrogen bond.
利用分子动力学模拟研究了水/碳氢化合物液体界面附近水的氢键形成和断裂动力学。考虑了几种液态烷烃作为碳氢化合物相,以确定它们的链长和支化程度对相邻水相性质的影响。除了根据实验室坐标系密度分布定义界面位置外,还通过根据另一相分子的接近程度确定界面来考虑界面波动的影响。我们发现,界面水的氢键动力学受碳氢化合物相的特性和毛细波的影响较弱。除了计算氢键时间相关性外,我们还研究了氢键动力学如何依赖于局部配位,并确定给定分子参与的氢键群体弛豫中的协同程度。研究了平移扩散和分子O-H键重取向对氢键断裂和重新形成机制的贡献。在之前的工作中,我们已经表明,水主轴的旋转在界面处是各向异性的,并且取决于分子相对于界面的初始取向。在这里,我们将这种分析扩展到O-H矢量的重取向和氢键时间相关性。我们发现,氢键动力学对参与氢键的分子的初始取向也很敏感。