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离子水合作用及水的氢键网络中的相关缺陷:在MgCl₂水溶液中对超出第一水合层的重排缓慢水分子的观测

Ion hydration and associated defects in hydrogen bond network of water: observation of reorientationally slow water molecules beyond first hydration shell in aqueous solutions of MgCl2.

作者信息

Baul Upayan, Vemparala Satyavani

机构信息

The Institute of Mathematical Sciences, C.I.T. Campus, Taramani, Chennai 600113, India.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Jan;91(1):012114. doi: 10.1103/PhysRevE.91.012114. Epub 2015 Jan 8.

DOI:10.1103/PhysRevE.91.012114
PMID:25679577
Abstract

Effects of the presence of ions, at moderate to high concentrations, on dynamical properties of water molecules are investigated through classical molecular dynamics simulations using two well-known nonpolarizable water models. Simulations reveal that the presence of magnesium chloride (MgCl(2)) induces perturbations in the hydrogen bond network of water leading to the formation of bulklike domains with ''defect sites'' on boundaries of such domains: water molecules at such defect sites have less number of hydrogen bonds than those in bulk water. Reorientational autocorrelation functions for dipole vectors of such defect water molecules are computed at different concentrations of ions and compared with system of pure water. Earlier experimental and simulation studies indicate significant differences in reorientational dynamics for water molecules in the first hydration shell of many dissolved ions. Results of this study suggest that defect water molecules, which are beyond the first hydration shells of ions, also experience significant slowing of reorientation times as a function of concentration in the case of MgCl(2). However, addition of cesium chloride (CsCl) to water does not perturb the hydrogen bond network of water significantly even at higher concentrations. This difference in behavior between MgCl(2) and CsCl is consistent with the well-known Hofmeister series.

摘要

通过使用两种著名的非极化水模型进行经典分子动力学模拟,研究了中等至高浓度离子对水分子动力学性质的影响。模拟结果表明,氯化镁(MgCl₂)的存在会引起水分子氢键网络的扰动,导致形成具有“缺陷位点”的块状区域,这些区域边界上的水分子氢键数量比 bulk 水中的水分子少。在不同离子浓度下计算了此类缺陷水分子偶极矢量的重取向自相关函数,并与纯水体系进行了比较。早期的实验和模拟研究表明,许多溶解离子的第一水化层中的水分子重取向动力学存在显著差异。本研究结果表明,在氯化镁的情况下,位于离子第一水化层之外的缺陷水分子,其重取向时间也会随着浓度的增加而显著减慢。然而,即使在较高浓度下,向水中添加氯化铯(CsCl)也不会显著扰动水分子的氢键网络。MgCl₂和 CsCl 之间的这种行为差异与著名的霍夫迈斯特序列一致。

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