Hostname: page-component-77c89778f8-vpsfw Total loading time: 0 Render date: 2024-07-23T00:06:31.810Z Has data issue: false hasContentIssue false

Effects of repeated NaTPB-alteration and K-fixation upon a phlogopite

Published online by Cambridge University Press:  01 July 2024

M. B. McBride*
Affiliation:
Department of Land Resource Science, University of Guelph Guelph, Ontario, Canada
Sally Wentworth Rossi*
Affiliation:
Department of Land Resource Science, University of Guelph Guelph, Ontario, Canada
*
*Present address: Department of Crop and Soil Sciences, Michigan State University, East Lansing, Michigan 48823, USA
*Present address: Department of Crop and Soil Sciences, Michigan State University, East Lansing, Michigan 48823, USA

Abstract

Image of the first page of this content. For PDF version, please use the ‘Save PDF’ preceeding this image.'
Type
Notes
Copyright
Copyright © 1972, The Clay Minerals Society

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Barshad, I., (1954) Cation exchange in micaceous minerals. II. Replaceability of ammonium and potassium from vermiculite, biotite and montmorillonite Soil Sci. 78 5776.CrossRefGoogle Scholar
Brown, G. and Newman, A. C. D., (1970) Cation ex-change properties of micas. III. Release of potassium sorbed by potassium-depleted micas Clay Minerals 8 273278.CrossRefGoogle Scholar
Ellis, B. G. and Mortland, M. M., (1959) Rate of potassium release from fixed and native forms Soil Sci. Soc Amer. Proc. 23 451453.CrossRefGoogle Scholar
Newman, A. C. D., (1967) Changes in phlogopites during their artificial alteration Clay Minerals 7 215227.CrossRefGoogle Scholar
Newman, A. C. D., (1969) Cation exchange properties of micas. I. The relation between mica composition and potassium exchange in solutions of different pH J. Soil. Sci. 20 357373.CrossRefGoogle Scholar
Newman, A. C. D. and Brown, G., (1966) Chemical changes during the alteration of micas Clay Minerals 6 297309.CrossRefGoogle Scholar
Pruden, G. and King, H. G. C., (1969) A scheme of semi-micro analysis for the major elements in clay minerals, based on modifications to conventional methods of silicate analysis Clay Minerals 8 113.CrossRefGoogle Scholar
Rausell-Colom, J. A., Sweatman, T. R., Wells, C. B. and Norrish, K., (1964) Studies in the artificial weathering of mica Experimental Pedology London Butterworths 4072.Google Scholar
Reed, M. G. and Scott, A. D., (1966) Chemical extraction of potassium from soils and micaceous minerals with solutions containing sodium tetraphenylboron: IV. Muscovite Soil Sci. Soc. Amer. Proc. 30 185188.CrossRefGoogle Scholar
Scott, A. D., (1968) Effect of particle size on interlay er potassium exchange in micas Trans. 9th Int. Congress of Soil Sci. II 649659.Google Scholar
Scott, A. D., Hunziker, H. H. and Reed, M. G., (1959) Solubility of potassium tetraphenylboron in acetone-water solutions Chem. Analyst 48 11.Google Scholar
Scott, A. D., Hunziker, H. H. and Hanway, J. J., (1960) Chemical extraction of potassium from soils and micaceous minerals with solutions containing sodium tetraphenylboron: I. Preliminary experiments Soil Sci. Soc Amer. Proc. 24 191194.CrossRefGoogle Scholar
Scott, A. D. and Reed, M. G., (1960) Determination of the precipitated potassium in sodium tetraphenyl-boron-micaceous mineral systems Soil Sci. Soc. Amer. Proc. 24 326327.CrossRefGoogle Scholar
Scott, A. D. and Reed, M. G., (1962) Chemical extraction of potassium from soils and micaceous minerals with solutions containing sodium tetraphenylboron: II. Biotite Soil Sci. Soc. Amer. Proc. 26 4145.CrossRefGoogle Scholar
Scott, A. D. and Reed, M. G., (1962) Chemical extraction of potassium from soils and micaceous minerals with solutions containing sodium tetraphenylboron: III. Illite Soil Sci. Soc. Amer. Proc. 26 4548.CrossRefGoogle Scholar