Molecular properties of aqueous solutions: a focus on the collective dynamics of hydration water

化学物理 背景(考古学) 水溶液 分子动力学 化学 分子 水模型 软物质 动力学(音乐) 统计物理学 集体行为 热力学 物理 计算化学 物理化学 胶体 人类学 社会学 古生物学 有机化学 生物 声学
作者
Lucia Comez,Marco Paolantoni,Paola Sassi,S. Corezzi,Assunta Morresi,D. Fioretto
出处
期刊:Soft Matter [Royal Society of Chemistry]
卷期号:12 (25): 5501-5514 被引量:63
标识
DOI:10.1039/c5sm03119b
摘要

When a solute is dissolved in water, their mutual interactions determine the molecular properties of the solute on one hand, and the structure and dynamics of the surrounding water particles (the so-called hydration water) on the other. The very existence of soft matter and its peculiar properties are largely due to the wide variety of possible water-solute interactions. In this context, water is not an inert medium but rather an active component, and hydration water plays a crucial role in determining the structure, stability, dynamics, and function of matter. This review focuses on the collective dynamics of hydration water in terms of retardation with respect to the bulk, and of the number of molecules whose dynamics is perturbed. Since water environments are in a dynamic equilibrium, with molecules continuously exchanging from around the solute towards the bulk and vice versa, we examine the ability of different techniques to measure the water dynamics on the basis of the explored time scales and exchange rates. Special emphasis is given to the collective dynamics probed by extended depolarized light scattering and we discuss whether and to what extent the results obtained in aqueous solutions of small molecules can be extrapolated to the case of large biomacromolecules. In fact, recent experiments performed on solutions of increasing complexity clearly indicate that a reductionist approach is not adequate to describe their collective dynamics. We conclude this review by presenting current ideas that are being developed to describe the dynamics of water interacting with macromolecules.

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