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Hydrothermal Vermiculite from the Atlantis II Deep, Red Sea

Published online by Cambridge University Press:  01 July 2024

Arieh Singer
Affiliation:
Department of Soil and Water Science, The Hebrew University of Jerusalem, P.O. Box 12, Rehovet, 76-100, Israel
Peter Stoffers
Affiliation:
Institut für Sedimentforschung, Universität Heidelberg, 6900 Heidelberg 1, West Germany

Abstract

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Type
Notes
Copyright
Copyright © 1981, The Clay Minerals Society

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References

Al-Karghuli, A., (1979) Roentgenographische Untersuchungen an Sedimenten aus dem Atlantis II-Tief, Rotes Meer .Google Scholar
Bäcker, H. and Richter, H., (1973) Die rezente hydrothermal sedimentare Lagerstatte Atlantis II-Tief im Roten Meer Geot. Rundsch. 62 697741.CrossRefGoogle Scholar
Bailey, S. W., (1980) Summary of recommendations of AIPEA Nomenclature Committee Clay Miner. 15 8593.CrossRefGoogle Scholar
Barshad, I. and Kishk, F. M., (1969) Chemical composition of soil vermiculite clays as related to their genesis Contr. Mineral. Petrol. 24 136155.CrossRefGoogle Scholar
Bassett, W. A., (1963) The geology of vermiculite occurrences Clays & Clay Minerals 10 6169.Google Scholar
Bischoff, J. L., (1972) A ferroan nontronite from the Red Sea geothermal system Clays & Clay Minerals 20 217223.CrossRefGoogle Scholar
Brockamp, O. Goulart, E. Harder, H. and Heydemann, A., (1978) Amorphous copper and zinc sulfides in the metalliferous sediments of the Red Sea Contr. Mineral. Petrol. 68 8588.CrossRefGoogle Scholar
Douglas, L. A., Dixon, J. B. and Weed, S. B., (1977) Vermiculites Minerals in Soil Environments Wisconsin Soil Science Society of America, Madison 259292.Google Scholar
Goulart, E. P., (1976) Different smectite types in sediments of the Red Sea Geol. Jb. D17 135149.Google Scholar
MacKenzie, R. C., (1970) Differential Thermal Analysis New York Academic Press.Google Scholar
Mehra, O. P. and Jackson, M. L., (1960) Iron oxide removal from soils and clays by a dithionite-citrate system buffered with sodium bicarbonate Clays & Clay Minerals 7 317327.Google Scholar
Moody, J. B., (1976) Serpentinization: a review Lithos 9 125138.CrossRefGoogle Scholar
Roesch, H. and Scheuermann, L., (1974) Mineralogische Untersuchungen an Sedimenten des Atlantis II Tiefs. Valdivia Va 01/03 Rotes Meer-Golf von Aden Wissenschaftliche Ergebnisse Hannover Bundesanstalt fur Bodenforschung 5481.Google Scholar
Schneider, W. and Schumann, D., (1979) Tonminerale in Normalsedimenten, hydrothermal beinflussten Sedimenten und Erzschlammen der Roten Meeres Geol. Rundsch. 68 631648.CrossRefGoogle Scholar
Środoń, J. and Eberl, D. D., (1980) The presentation of X-ray data for clay minerals Clay Miner. 15 317320.CrossRefGoogle Scholar
Taylor, G. L. Ruotsala, A. P. and Keeling, R. O. Jr., (1968) Analysis of iron in layer silicates by Mössbauer spectroscopy Clays & Clay Minerals 16 381391.CrossRefGoogle Scholar