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  Ion association in hydrothermal aqueous NaCl solutions: implications for the microscopic structure of supercritical water

Elbers, M., Schmidt, C., Sternemann, C., Sahle, C. J., Jahn, S., Albers, C., Sakrowski, R., Gretarsson, H., Sundermann, M., Tolan, M., Wilke, M. (2021): Ion association in hydrothermal aqueous NaCl solutions: implications for the microscopic structure of supercritical water. - Physical Chemistry Chemical Physics, 23, 27, 14845-14856.
https://doi.org/10.1039/D1CP01490K

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Elbers, Mirko1, Author
Schmidt, C.2, Author              
Sternemann, Christian1, Author
Sahle, Christoph J.1, Author
Jahn, Sandro1, Author
Albers, Christian1, Author
Sakrowski, Robin1, Author
Gretarsson, Hlynur1, Author
Sundermann, Martin1, Author
Tolan, Metin1, Author
Wilke, Max1, Author
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1External Organizations, ou_persistent22              
23.6 Chemistry and Physics of Earth Materials, 3.0 Geochemistry, Departments, GFZ Publication Database, Deutsches GeoForschungsZentrum, ou_146036              

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 Abstract: Knowledge of the microscopic structure of fluids and changes thereof with pressure and temperature is important for the understanding of chemistry and geochemical processes. In this work we investigate the influence of sodium chloride on the hydrogen-bond network in aqueous solution up to supercritical conditions. A combination of in situ X-ray Raman scattering and ab initio molecular dynamics simulations is used to probe the oxygen K-edge of the alkali halide aqueous solution in order to obtain unique information about the oxygen's local coordination around the ions, e.g. solvation-shell structure and the influence of ion pairing. The measured spectra exhibit systematic temperature dependent changes, which are entirely reproduced by calculations on the basis of structural snapshots obtained via ab initio molecular dynamics simulations. Analysis of the simulated trajectories allowed us to extract detailed structural information. This combined analysis reveals a net destabilizing effect of the dissolved ions which is reduced with rising temperature. The observed increased formation of contact ion pairs and occurrence of larger polyatomic clusters at higher temperatures can be identified as a driving force behind the increasing structural similarity between the salt solution and pure water at elevated temperatures and pressures with drawback on the role of hydrogen bonding in the hot fluid. We discuss our findings in view of recent results on hot NaOH and HCl aqueous fluids and emphasize the importance of ion pairing in the interpretation of the microscopic structure of water.

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Language(s): eng - English
 Dates: 20212021
 Publication Status: Finally published
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 Identifiers: DOI: 10.1039/D1CP01490K
GFZPOF: p4 T8 Georesources
OATYPE: Hybrid Open Access
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Title: Physical Chemistry Chemical Physics
Source Genre: Journal, SCI, Scopus
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Pages: - Volume / Issue: 23 (27) Sequence Number: - Start / End Page: 14845 - 14856 Identifier: CoNE: https://gfzpublic.gfz-potsdam.de/cone/journals/resource/journals389
Publisher: Royal Society of Chemistry (RSC)