Wilson M A, Pohorille A, Pratt L R
Department of Chemistry, University of California, Berkeley 94720, USA.
J Phys Chem. 1987;91(19):4873-8. doi: 10.1021/j100303a002.
The results of molecular dynamics calculations on the equilibrium interface between liquid water and its vapor at 325 K are presented. For the TIP4P model of water intermolecular pair potentials, the average surface dipole density points from the vapor to the liquid. The most common orientations of water molecules have the C2 nu molecular axis roughly parallel to the interface. The distributions are quite broad and therefore compatible with the intermolecular correlations characteristic of bulk liquid water. All near-neighbor pairs in the outermost interfacial layers are hydrogen bonded according to the common definition adopted here. The orientational preferences of water molecules near a free surface differ from those near rigidly planar walls which can be interpreted in terms of patterns found in hexagonal ice 1. The mean electric field in the interfacial region is parallel to the mean polarization which indicates that attention cannot be limited to dipolar charge distributions in macroscopic descriptions of the electrical properties of this interface. The value of the surface tension obtained is 132 +/- 46 dyn/cm, significantly different from the value for experimental water of 68 dyn/cm at 325 K.
给出了325K时液态水及其蒸汽平衡界面的分子动力学计算结果。对于水的分子间对势的TIP4P模型,平均表面偶极密度从蒸汽指向液体。水分子最常见的取向是C2ν分子轴大致平行于界面。这些分布相当宽泛,因此与 bulk 液态水的分子间相关性特征相符。根据这里采用的通用定义,最外层界面层中的所有近邻对都形成了氢键。自由表面附近水分子的取向偏好与刚性平面壁附近的不同,这可以根据六方冰1中发现的模式来解释。界面区域的平均电场与平均极化平行,这表明在对该界面电学性质的宏观描述中,不能仅局限于偶极电荷分布。得到的表面张力值为132±46 dyn/cm,与325K时实验水的68 dyn/cm值有显著差异。