Guisoni Nara, Henriques Vera Bohomoletz
Instituto de Pesquisa e Desenvolvimento, Universidade do Vale do Paraíba (UNIVAP), Av. Shishima Hifumi, 2911, Urbanova cep 12244-000, São José dos Campos, SP, Brazil.
J Phys Chem B. 2006 Aug 31;110(34):17188-94. doi: 10.1021/jp060729f.
To shed light on the microscopic mechanism of hydrophobic hydration, we study a simplified lattice model for water solutions in which the orientational nature of hydrogen bonding as well as the degeneracy related to proton distribution are taken into account. Miscibility properties of the model are looked at for both polar (hydrogen bonding) and nonpolar (non-hydrogen bonding) solutes. A quasichemical solution for the pure system is reviewed and extended to include the different kinds of solute. A Monte Carlo study of our model yields a novel feature for the local structure of the hydration layer: energy correlation relaxation times for solvation water are larger than the corresponding relaxation times for bulk water. This result suggests the presence of ordering of water particles in the first hydration shell. A nonassociating model solvent, represented by a lattice gas, presents opposite behavior, indicating that this effect is a result of the directionality of the interaction. In presence of polar solutes, we find an ordered mixed pseudophase at low temperatures, indicating the possibility of closed loops of immiscibility.
为了阐明疏水水合作用的微观机制,我们研究了一种用于水溶液的简化晶格模型,其中考虑了氢键的取向性质以及与质子分布相关的简并性。针对极性(氢键)和非极性(非氢键)溶质,研究了该模型的混溶性质。回顾并扩展了纯系统的准化学溶液,以纳入不同种类的溶质。对我们模型的蒙特卡罗研究得出了水合层局部结构的一个新特征:溶剂化水的能量相关弛豫时间大于本体水的相应弛豫时间。这一结果表明在第一水合壳层中存在水分子的有序排列。由晶格气体表示的非缔合模型溶剂呈现出相反的行为,表明这种效应是相互作用方向性的结果。在极性溶质存在的情况下,我们发现在低温下存在有序的混合假相,这表明存在不混溶的闭环可能性。