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The chemical modelling of clay/electrolyte interactions for montmorillonite

Published online by Cambridge University Press:  09 July 2018

P. Fletcher
Affiliation:
Schlumberger Cambridge Research, PO Box 153, Cambridge CB3 0HG, UK
G. Sposito
Affiliation:
Department of Plant and Soil Biology, The University of California, Berkeley, Ca 94720, USA

Abstract

A study of the ion-exchange properties of montmorillonite has been performed in order to facilitate computer predictions of the chemical properties of natural fluids and mineral assemblies. Clay/electrolyte interactions can be described using a technique based on the concept of hypothetical surface complex formation. This technique, which is compatible with ion-association models such as GEOCHEM, can be used to simulate simultaneous ion-exchange, hydrolysis of clay edges and anion adsorption on clay surfaces. Effects such as variable cation-exchange capacity and compositionally dependent exchange constants, normally indicating non-ideal behaviour, can be simulated using different combinations of ideal reactions involving charged surfaces and complexing groups representing clay edges. The modelling procedures are flexible and thermodynamically self-consistent. The techniques were applied to data on the ion-exchange characteristics of Wyoming bentonite to yield thermodynamic data for the reactivity of this clay with alkali metals, alkaline earths and a range of first-row transition metals at 25°C.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 1989

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References

Argersinger, W J., Davidson, A. W. & Bonner, O.D. (1950) Thermodynamics and ion exchange phenomena. Trans. Kansas Acad. Sci., 53, 404.Google Scholar
Barrer, R.M. & Klinowski, J. (1974) Ion exchange selectivity and electrolyte concentration. J.C.S. Faraday I., 70, 2080.CrossRefGoogle Scholar
Bolt, G.H. (1978) Chapter 5 in: Soil Chemistry A. Basic Elements. (G., Bolt and Bruggenwert, M. G. M., editors). Elsevier.Google Scholar
Davis, C.W. (1962) Ion Association. Butterworths, London.Google Scholar
Gaines, G.L. & Thomas, H.C. (1953) Adsorption studies on clay minerals: II. A formulation of the thermodynamics of exchange adsorption. J. Chem. Phys., 21, 714.CrossRefGoogle Scholar
Gast, R.G. (1969) Standard free energies of exchange for alkali metal cations on Wyoming bentonite. Soil Sci. Soc. Am. Proc., 33, 37.Google Scholar
Gast, R.G. (1971) Alkali metal cation exchange on Chambers montmorillonite. Soil Sci. Soc. Am. Proc., 36, 14.CrossRefGoogle Scholar
Gast, R.G., Van Bladel, R. & Deschpande, K.B. (1969) Standard heats and entropies of exchange for alkali metals on Wyoming bentonite. Soil Sci. Soc. Am. Proc., 33, 661.Google Scholar
Gilbert, M. & Laudelout, H. (1965) Exchange properties of hydrogen ions in clays. Soil Sci., 100, 157.Google Scholar
Hogfeld, E. (1953) On ion exchange equilibria. II Activities of components in ion exchangers. Arkiv Kemi, 5, 147.Google Scholar
Maes, A., Peigneur, P. & Cremers, A. (1976) Thermodynamics of transition metal ion exchange in montmorillonite. Proc. Int. Clay Conf. 1975,, 319.Google Scholar
Marshall, C.E. & Bergman, W.E. (1942a) The electrochemical properties of mineral membranes. II. Measurement of potassium-ion activities in colloidal clays. J. Phys. Chem., 24, 52.CrossRefGoogle Scholar
Marshall, C.E. & Bergman, W.E. (1942b) The electrochemical properties of mineral membranes. Ill and IV. Ill The estimation of ammonium ion activities. J. Phys. Chem., 46, 325.CrossRefGoogle Scholar
Marshall, C.E. & Krinbill, C.A. (1942) The clays as colloidal electrolytes. J. Phys. Chem., 46, 1077. Google Scholar
Martin, H. & Laudelout, H. (1963) Thermodynamique de Texchange des cations alcalins dans les argiles. J. Chim. Phys., 60, 1086.CrossRefGoogle Scholar
Morel, F. & Morgan, J. (1972) A numerical method for computing equilibria in aqueous chemical systems. Env. Sci. TechnoL, 6, 58.Google Scholar
Nordstrom, D.K., Plummer, L.N., Wigley, T.M.L., Wolery, T.J., Ball, J.W., Jenne, E.A., Bassett, R.L., Crerar, D.A., Florence, T.M., Fritz, B., Hoffman, M., Holdren, G.R., Lafon, G.M., Mattigod, S.V., McDuff, R.E., Morel, F., Reddy, M.M., Sposito, G. & Thrailkill, J. (1979) A comparison of computerised chemical models for equilibrium calculations in aqueous solutions, Am. Chem. Soc. Symp. Ser., 93, 857.Google Scholar
Shaviv, A. & Mattigod, S.V. (1985) Cation exchange equilibria in soils expressed as cation-ligand complex formation. Soil Sci. Soc. Am. J., 49, 569.CrossRefGoogle Scholar
Sposito, G., Holtzclaw K.M., , Charlet, L., Jouany, C. & Page, A.L. (1983a) Cation selectivity in sodium- calcium and sodium-magnesium exchange on Wyoming bentonite at 298K. Soil Sci. Soc. Am. J., 47, 917.Google Scholar
Sposito, G., Holtzclaw, K.M., Charlet, L. Jouany, C. & Page, A .L. (1983b) Sodium-caicium and sodium-magnesium exchange on Wyoming bentonite in perchlorate and chloride background ionic media. Soil Sci. Soc. Am. J., 47, 51.Google Scholar
Sposito, G., Holtzclaw, K.M., Johnston, C.T. & LeVesque, X. (1981) Thermodynamics of sodium-copper exchange on Wyoming bentonite at 298K. Soil Sci. Soc. Am. J., 45, 1079.CrossRefGoogle Scholar
Sposito, G., Jouany, C., Holtzclaw, K.M. & LeVesque, X. (1983c) Calcium-magnesium exchange in the presence of adsorbed sodium. Soil Sci. Soc. Am. J., 47, 1081.Google Scholar
Sposito, G. & Mattigod, S.V. (1980) GEOCHEM: A computer program for the calculation of chemical equilibria in soil solutions and other natural water systems. Kemey Foundation of Soil Sci., University of California, Riverside.Google Scholar
Sposito, G. & Mattigod, S.V. (1979) Ideal behaviour in Na-trace metal cation exchange on Camp Bertaux montmorillonite. Clays Clay Miner., 27, 125.Google Scholar