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Sodium, Calcium, and Ammonium Exchange on Clinoptilolite from the Fort Laclede Deposit, Sweetwater County, Wyoming

Published online by Cambridge University Press:  02 April 2024

Matthew H. Hulbert*
Affiliation:
International Minerals & Chemical Corporation, P.O. Box 207, Terre Haute, Indiana 47808

Abstract

Clinoptilolite from the Fort LaClede deposit in Sweetwater County, Wyoming, shows a moderate selectivity for NH4 over Na+ in aqueous solution. At 30°C, the standard free energy of this replacement reaction is −0.7 kcal/mole at an ionic strength of 0.05 M and −0.8 kcal/mole at 0.5 M. The Na+-NH4+ exchange is complete within 3 days in agitated solution and proceeds to the same extent from the clinoptilolite saturated with either cation.

The Ca2+-Na+ exchange also is complete within 3 days in agitated aqueous solution and proceeds to the same extent from either the calcium or the sodium form of the zeolite. Using test methods which take into account the slower equilibration of Ca2+-loaded clinoptilolite, the cation-exchange capacity is substantially the same over the full range of loading by Ca2+ and Na+. Ca2+ replaces Na+ with decreasing selectivity as Ca2+ loading increases to about 80% at 30°C (95% at 63°C), above which the selectivity reverses. The standard free energy of replacement of two Na+ ions by one Ca2+ ion in 0.05 M solution is −1.2 ± 0.2 kcal/mole at 63°C and −0.3 to −0.8 kcal/mole at 30°C.

Type
Research Article
Copyright
Copyright © 1987, The Clay Minerals Society

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References

Ames, L. L. Jr., 1960 The cation sieve properties of clinoptilolite Amer. Mineral. 45 689700.Google Scholar
Ames, L. L. Jr., 1961 Cation sieve properties of the open zeolites chabazite, mordenite, erionite and clinoptilolite Amer. Mineral. 46 11201131.Google Scholar
Barrer, R. M., Papadopoulos, R. and Rees, L. V. C., 1967 Exchange of sodium in clinoptilolite by organic cations J. Inorg. Nucl. Chem. 29 20472063.CrossRefGoogle Scholar
Barrer, R. M., Rees, L. V. C. and Shamsuzzoha, M., 1966 Thermochemistry and thermodynamics of ion exchange in a near-faujasite J. Inorg. Nucl. Chem. 28 629643.CrossRefGoogle Scholar
Barrer, R. M., Rees, L. V. C. and Ward, D. J., 1963 Thermochemistry and thermodynamics of ion exchange in a crystalline exchange medium Proc. Royal Soc, Ser. A 273 180197.Google Scholar
Black, C. A., 1965 Methods of Soil Analysis Wisconsin Madison 894899.CrossRefGoogle Scholar
Breck, D. W., 1974 Zeolite Molecular Sieves New York Wiley 533534.Google Scholar
Curry, H. D., Samini, K., Hausel, W. D. and Harris, R. E., 1983 Washakie basin, Wyoming, zeolites Genesis and Exploration of Metallic and Nonmetallic Minerals and Ore Deposits of Wyoming and Adjacent Areas Wyoming Wyoming, Laramie 3233.Google Scholar
Dyer, A., 1984 Uses of natural zeolites Chemistry & Industry 241245.Google Scholar
Gaines, G. L. Jr. and Thomas, H. C., 1953 Adsorption studies on clay minerals. II. A formulation of the thermodynamics of exchange adsorption J. Chem. Phys. 21 714718.CrossRefGoogle Scholar
Howery, D. G. and Thomas, H. C., 1965 Ion exchange on the mineral clinoptilolite J. Phys. Chem. 69 531537.CrossRefGoogle Scholar
Laitinen, H. A., 1960 Chemical Analysis New York McGraw-Hill 1012.Google Scholar
Llenado, R. A., Olson, D. and Bisio, A., 1984 The use of sodium type A zeolite in laundry detergents Proc. 6th Int. Zeolite Conf United Kingdom Butterworths, Guildford, Surrey 940956.Google Scholar
McNair, D. R., Sims, R. C. and Grenney, W. J., 1986 An evaluation of clinoptilolite amended slow rate sand filtration economics at higher than standard flow rates Proc. 1986 Annual Conference .Google Scholar
Mumpton, F. A., Sand, L. B. and Mumpton, F. A., 1978 Natural zeolites: A new industrial mineral commodity Natural Zeolites: Occurrence, Properties, Use 327.Google Scholar
Rees, L. V. C., Olson, D. and Bisio, A., 1984 Binary and ternary exchange in zeolite A Proc. 6th Int. Zeolite Conf 626640.Google Scholar
Roehler, H. W. (1973) Stratigraphy of the Washakie Formation in the Washakie basin, Wyoming: U.S. Geol. Surv. Bull. 1369, 40 pp.Google Scholar
Semmens, M. J., Seyfarth, M., Sand, L. B. and Mumpton, F. A., 1978 The selectivity of clinoptilolite for certain heavy metals Natural Zeolites: Occurrence, Properties, Use New York Pergamon Press, Elmsford 517526.Google Scholar
Vaughan, D. E. W., Sand, L. B. and Mumpton, F. A., 1978 Properties of natural zeolites Natural Zeolites: Occurrence, Properties, Use New York Pergamon Press, Elmsford 353371.Google Scholar
Wiers, B. H., Grosse, R. J. and Cilley, W. A., 1982 Divalent and trivalent ion exchange with zeolite A Envir. Sci. Tech. 16 617624.CrossRefGoogle ScholarPubMed