Abstract
AbstractSalt water is ubiquitous, playing crucial roles in geological and physiological processes. Despite centuries of investigations, whether or not water’s structure is drastically changed by dissolved ions is still debated. Based on density functional theory, we employ machine learning based molecular dynamics to model sodium chloride, potassium chloride, and sodium bromide solutions at different concentrations. The resulting reciprocal-space structure factors agree quantitatively with neutron diffraction data. Here we provide clear evidence that the ions in salt water do not distort the structure of water in the same way as neat water responds to elevated pressure. Rather, the computed structural changes are restricted to the ionic first solvation shells intruding into the hydrogen bond network, beyond which the oxygen radial-distribution function does not undergo major change relative to neat water. Our findings suggest that the widely cited pressure-like effect on the solvent in Hofmeister series ionic solutions should be carefully revisited.
Funder
National Science Foundation
U.S. Department of Energy
United States Department of Defense | United States Army | U.S. Army Research, Development and Engineering Command | Army Research Laboratory
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary
Reference52 articles.
1. Cox, W. M. & Wolfenden, J. H. The viscosity of strong electrolytes measured by a differential method. Proc. R. Soc. Lond. 145, 475–488 (1934).
2. Cummings, S. et al. Chloride ions in aqueous solutions. Nature 287, 714–716 (1980).
3. Skipper, N. T., Cummings, S., Neilson, G. W. & Enderby, J. E. Ionic structure in aqueous electrolyte solution by the difference method of X-ray diffraction. Nature 321, 52–53 (1986).
4. Leberman, R. & Soper, A. K. Effect of high salt concentrations on water structure. Nature 378, 364–366 (1995).
5. Parsegian, V. A. Hopes for Hofmeister. Nature 378, 335–336 (1995).
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