Institute for Physical Science and Technology and Chemical Physics Program, University of Maryland , College Park, Maryland 20742, United States.
J Phys Chem B. 2013 Dec 12;117(49):15479-91. doi: 10.1021/jp4053067. Epub 2013 Aug 28.
We use appropriately defined short-ranged reference models of liquid water to clarify the different roles local hydrogen bonding, van der Waals attractions, and long-ranged electrostatic interactions play in the solvation and association of apolar solutes in water. While local hydrogen bonding interactions dominate hydrophobic effects involving small solutes, longer-ranged electrostatic and dispersion interactions are found to be increasingly important in the description of interfacial structure around large solutes. The hydrogen bond network sets the solute length scale at which a crossover in solvation behavior between these small and large length scale regimes is observed. Unbalanced long-ranged forces acting on interfacial water molecules are also important in hydrophobic association, illustrated here by analysis of the association of model methane and buckminsterfullerene solutes.
我们使用适当定义的短程参考模型来澄清氢键、范德华力和长程静电相互作用在水溶剂化和非极性溶质缔合中的不同作用。虽然局部氢键相互作用主导涉及小溶质的疏水效应,但在描述大溶质周围的界面结构时,发现长程静电和色散相互作用越来越重要。氢键网络确定了溶剂化行为从小尺寸到大尺寸的转变发生在这个溶剂化尺度上。界面水分子上不平衡的长程力在疏水缔合中也很重要,这里通过对模型甲烷和富勒烯溶质的缔合分析说明了这一点。