Hostname: page-component-76fb5796d-22dnz Total loading time: 0 Render date: 2024-04-29T12:53:04.423Z Has data issue: false hasContentIssue false

A study of the weathering of a biotite using the Mössbauer effect

Published online by Cambridge University Press:  05 July 2018

B. A. Goodman
Affiliation:
The Macaulay Institute for Soil Research, Craigiebuckler, Aberdeen, AB9 2QJ
M. J. Wilson
Affiliation:
The Macaulay Institute for Soil Research, Craigiebuckler, Aberdeen, AB9 2QJ

Summary

The behaviour of iron in the weathering of biotite in a sedentary soil profile developed on appinite has been investigated using the Msbauer effect. Both Fe2+ and Fe3+ in sites with cis and trans hydroxyl groups were observed at various stages in the weathering sequence. The results indicate that there is little or no ordering of the octahedral cations in the fresh biotite and hydrobiotite, but in the more weathered interstratified vermiculite-chlorite samples Fe3+ concentrates in the more distorted sites. No evidence was obtained for the presence of an anisotropic recoil-free fraction.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 1973

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

Bancroft, (G. M.), Maddock, (A. G.), and Burns, (R. G.), I967. Geochimica Acta, 31, 2219.CrossRefGoogle Scholar
Barsnad, (I.) and KISHI( (F.), 1968. Science, 162, 1401.Google Scholar
Berrett, (R. R.) and Fitzsimmons, (B. W.), 1967. Journ. Chem. Soc. (A), 525.CrossRefGoogle Scholar
Clark, (P. E.), Nichol, (A. W.), and CARLOW (J. S,), I967. Journ. Sci. Instrum., 44, 1001.CrossRefGoogle Scholar
Donnay, (G.), Morimoto, (N.), Takeda, (H.), and Donnay, (J. D. H.), I964. Acta Cryst., 17, 1369.CrossRefGoogle Scholar
Goldanskn, (V. I.), Makarov, (E. F.), and Khrapov, (V. V.), I963. Soviet Phys. JETP, 17, 508.Google Scholar
Hä,GGStröM, (L.), Wappling, (R.), and Annersten, (H.), 1969. Chem. Phys. Lett., 4, 107.CrossRefGoogle Scholar
Helsen, (J.), Lafaut, (J. P.), and Schmidt, (K.), I970. Reunion Hispano-Belga Min. Arcilla, Madrid 173.Google Scholar
Hogg, (C. S.) and Meads, (R. E.), 1970. Min. Mag., 37, 606.CrossRefGoogle Scholar
Ingalls, (R.), 1964 Phys. Rev., 133, A787.Google Scholar
Krzanowski, (W. J.) and Newman, (A. C. D.), t972. Min. Mag., 38, 926.CrossRefGoogle Scholar
Kündig, (W.), Ando, (K. J.), Lindqvist, (R. H.), and Constabaris, (G.), 1967. Czech. Journ. Phys. B17, 467.CrossRefGoogle Scholar
Preston, (R. S.), Hanna, (S. S.), and Heberle, (J.), 1962. Phys. Rev., 128, 2207.CrossRefGoogle Scholar
Radoslovicri, (E. W.), 1960. Acta Cryst., 13, 919.CrossRefGoogle Scholar
Rice, (C. M.) and Williams, (J. M.), 1969. Min. Mag., 37, 210.CrossRefGoogle Scholar
Robert, (M.) and Pedro, (G.), 1968. Compt. Rend. Acad. Sci. Paris, 267D, 1805.Google Scholar
Van Wieringen, (J. W.), 1968. Phys. Letters, 26A, 370.CrossRefGoogle Scholar
Wilson, (A. D.), 196O. Analyst, 85, 823.CrossRefGoogle Scholar
Wilson, (M. J.), 197o. Clay Min., 8, 29I.Google Scholar
Wyckoff, (R. W. G.), 196O. Crystal Structure. New York (Interscience).Google Scholar
Yassoglou, (N. J.), Nobeli, (C.), Kostikas, (A. J.), and Simovoolos, (A. C.), 1972. Soil Sci. Soc. Amer. Proc., 36, 520.CrossRefGoogle Scholar