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Nonpolar solutes enhance water structure within hydration shells while reducing interactions between them

机译:非极性溶质可增强水合壳内的水结构,同时减少它们之间的相互作用

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摘要

The origins of the hydrophobic effect are widely thought to lie in structural changes of the water molecules surrounding a nonpolar solute. The spatial distribution functions of the water molecules surrounding benzene and cyclohexane computed previously from molecular dynamics simulations show a high density first hydration shell surrounding both solutes. In addition, benzene showed a strong preference for hydrogen bonding with two water molecules, one to each face of the benzene ring. The position data alone, however, do not describe the majority of orientational changes in the water molecules in the first hydration shells surrounding these solutes. In this paper, we measure the changes in orientation of the water molecules with respect to the solute through spatial orientation functions as well as radial/angular distribution functions. These data show that the water molecules hydrogen bonded to benzene have a strong orientation preference, whereas those around cyclohexane show a weaker tendency. In addition, the water–water interactions within and between the first two hydration shells were measured as a function of distance and “best” hydrogen bonding angle. Water molecules within the first hydration shell have increased hydrogen bonding structure; water molecules interacting across shell 1 and shell 2 have reduced hydrogen bonding structure.
机译:人们普遍认为疏水作用的根源在于围绕非极性溶质的水分子的结构变化。先前通过分子动力学模拟计算得到的围绕苯和环己烷的水分子的空间分布函数表明,围绕两种溶质的高密度第一水合壳。另外,苯表现出强烈的优先性,要求氢与两个水分子键合,苯环的每一面都有一个。然而,仅位置数据并不能描述围绕这些溶质的第一水合壳中水分子的大多数取向变化。在本文中,我们通过空间取向函数以及径向/角分布函数来测量水分子相对于溶质的取向变化。这些数据表明,与苯结合的氢分子具有较强的取向优先性,而环己烷周围的分子则较弱。此外,前两个水化壳内部和之间的水-水相互作用是距离和“最佳”氢键角的函数。第一水合壳内的水分子具有增强的氢键结构;跨壳1和壳2相互作用的水分子的氢键结构降低。

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