Hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations

© 2016 Elsevier Ltd. Recent work has suggested that the rates of mineral dissolution in aqueous solutions are dependent on the kinetics of dehydration of the ions building the crystal. Dehydration kinetics will be ultimately determined by the competition between ion-water and water-water interaction...

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Main Authors: Burgos-Cara, A., Putnis, Christine, Rodriguez-Navarro, C., Ruiz-Agudo, E.
Format: Journal Article
Published: Pergamon 2016
Online Access:http://hdl.handle.net/20.500.11937/15411
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author Burgos-Cara, A.
Putnis, Christine
Rodriguez-Navarro, C.
Ruiz-Agudo, E.
author_facet Burgos-Cara, A.
Putnis, Christine
Rodriguez-Navarro, C.
Ruiz-Agudo, E.
author_sort Burgos-Cara, A.
building Curtin Institutional Repository
collection Online Access
description © 2016 Elsevier Ltd. Recent work has suggested that the rates of mineral dissolution in aqueous solutions are dependent on the kinetics of dehydration of the ions building the crystal. Dehydration kinetics will be ultimately determined by the competition between ion-water and water-water interactions, which can be significantly modified by the presence of background ions in solution. At low ionic strength, the effect of electrolytes on ion-water (electrostatic) interactions will dominate (Kowacz et al., 2007). By performing macroscopic and in situ, microscopic (atomic force microscopy) dissolution experiments, the effect of background electrolytes on the dissolution kinetics of gypsum (CaSO4·2H2O) cleavage surfaces is tested at constant, low ionic strength (IS = 0.05) and undersaturation (saturation index, SI = -0.045). Dissolution rates are systematically lower in the presence of 1:1 background electrolytes than in an electrolyte-free solution, regardless of the nature of the electrolyte tested. We hypothesize that stabilization of the hydration shell of calcium by the presence of background ions can explain this result, based on the observed correlations in dissolution rates with the ionic surface tension increment of the background ion in solution. Stabilization of the cation hydration shell should favor dissolution. However, in the case of strongly hydrated ions such as Ca2+, this has a direct entropic effect that reduces the overall dG of the system, so that dissolution is energetically less favorable. Overall, these results provide new evidence that supports cation dehydration being the rate-controlling step for gypsum dissolution, as proposed for other minerals such as barite, dolomite and calcite.
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spelling curtin-20.500.11937-154112017-09-13T13:41:02Z Hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations Burgos-Cara, A. Putnis, Christine Rodriguez-Navarro, C. Ruiz-Agudo, E. © 2016 Elsevier Ltd. Recent work has suggested that the rates of mineral dissolution in aqueous solutions are dependent on the kinetics of dehydration of the ions building the crystal. Dehydration kinetics will be ultimately determined by the competition between ion-water and water-water interactions, which can be significantly modified by the presence of background ions in solution. At low ionic strength, the effect of electrolytes on ion-water (electrostatic) interactions will dominate (Kowacz et al., 2007). By performing macroscopic and in situ, microscopic (atomic force microscopy) dissolution experiments, the effect of background electrolytes on the dissolution kinetics of gypsum (CaSO4·2H2O) cleavage surfaces is tested at constant, low ionic strength (IS = 0.05) and undersaturation (saturation index, SI = -0.045). Dissolution rates are systematically lower in the presence of 1:1 background electrolytes than in an electrolyte-free solution, regardless of the nature of the electrolyte tested. We hypothesize that stabilization of the hydration shell of calcium by the presence of background ions can explain this result, based on the observed correlations in dissolution rates with the ionic surface tension increment of the background ion in solution. Stabilization of the cation hydration shell should favor dissolution. However, in the case of strongly hydrated ions such as Ca2+, this has a direct entropic effect that reduces the overall dG of the system, so that dissolution is energetically less favorable. Overall, these results provide new evidence that supports cation dehydration being the rate-controlling step for gypsum dissolution, as proposed for other minerals such as barite, dolomite and calcite. 2016 Journal Article http://hdl.handle.net/20.500.11937/15411 10.1016/j.gca.2016.02.008 Pergamon restricted
spellingShingle Burgos-Cara, A.
Putnis, Christine
Rodriguez-Navarro, C.
Ruiz-Agudo, E.
Hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations
title Hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations
title_full Hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations
title_fullStr Hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations
title_full_unstemmed Hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations
title_short Hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations
title_sort hydration effects on gypsum dissolution revealed by in situ nanoscale atomic force microscopy observations
url http://hdl.handle.net/20.500.11937/15411