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Halloysite and Gibbsite Formation in Hawaii

Published online by Cambridge University Press:  01 January 2024

Thomas F. Bates*
Affiliation:
Department of Mineralogy, The Pennsylvania State University, University Park, Pennsylvania, USA
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Abstract

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Desilication and removal of bases from the basalitic rocks of the Hawaiian Islands produces large amounts of halloysite and gibbsite, together with variable quantities of allophane and nontronite, iron and titanium oxides, and amorphous mineral and gel material.

The nature and relative abundance of intermediate and end products of weathering depend primarily upon the amount of rainfall, angle of slope, and texture of the rock. The formation of clay minerals is the common step in the transformation of primary silicates to oxides and hydroxides, but the amount and relative importance of the clay “stage” depend on the intensity of the weathering process.

Halloysite forms from plagioclase usually by alteration of first the core and subsequently the rim of the feldspar laths. No kaolinite was observed, its absence being attributed to the absence of fine-grained mica as an intermediate weathering product.

Gibbsite is produced by (1) removal of silica from halloysite, (2) dehydration of Al-gel, and (3) precipitation from solution. Although it is possible that the mineral may form directly from feldspar, halloysite is the common crystalline intermediate on both the megascopie and microscopic scales.

An amorphous transition state, probably ranging in composition from allophane to Al-gel, exists as part of the change from halloysite to gibbsite as evidenced by electron microscope and diffraction work on pseudomorphs after halloysite tubes found in certain samples studied in more detail than others.

Volcanic glass is the apparent source of most Al-Fe-Si gel material which upon dehydration becomes allophane, cliachite, or gibbsite depending on the kind and relative proportion of the cations present.

Type
General Session
Copyright
Copyright © The Clay Minerals Society 1960

Footnotes

Contribution no. 60-51, Mineral Industries Experiment Station, The Pennsylvania State University, University Park, Pennsylvania.

References

Abbott, A. T. (1958) Occurrence of gibbsite on the island of Kauai, Hawaiian Islands: Econ. Geol., v. 53, pp. 842853.CrossRefGoogle Scholar
Cline, M. G. et al. (1955) Soil survey of the Territory of Hawaii: U.S. Dept. Agric. Soil Survey, series 1939, no. 25, pp. 1644.Google Scholar
Hinds, N. E. A. (1929) The weathering of the Hawaiian lavas. I. The compositions of lavas and soils from Kauai: Amer. J. Sci., 5th ser., v. 17, pp. 297320.CrossRefGoogle Scholar
Hough, G. J. and Byers, H. G. (1937) Chemical and physical studies of certain Hawaiian soil profiles: U.S. Dept. Agric. Tech. Bull. 584, 26 p.Google Scholar
Hough, G. J., Gile, P. L. and Foster, Z. C. (1941) Rock weathering and soil profile development in the Hawaiian Islands: U.S. Dept. Agric. Tech. Bull. 752, 43 p.Google Scholar
Palmer, H. S. (1931) Soil forming processes in the Hawaiian Islands from the chemical and mineralogical points of view: Soil Sci., v. 31, pp. 253265.CrossRefGoogle Scholar
Sherman, G. D. (1950) The genesis and morphology of Hawaiian laterite crusts: Pacific Sci., v. 4, pp. 315322.Google Scholar
Sherman, G. D. (1958) Gibbsite-rich soils of the Hawaiian Islands: Univ. Hawaii Agr. Expt. Sta. Bull. 116, pp. 123.Google Scholar
Sherman, G. D. and Uehara, G. (1956) The weathering of olivine basalt in Hawaii and its pedogenic significance: Soil Sci. Soc. Amer. Proc., v. 20, pp. 337340.CrossRefGoogle Scholar
Stearns, H. T. and Macdonald, G. A. (1942) Geology and ground-water resources of the Island of Maui, Hawaii: Hawaii Div. Hydrography Bull. 7, pp. 1344.Google Scholar
Tamura, T., Jackson, M. L. and Sherman, G. D. (1953) Mineral content of low humic, humic and hydrol humic latosols of Hawaii: Soil Sci. Soc. Amer. Proc., v. 17, pp. 343346.CrossRefGoogle Scholar
Tanada, T. (1951) Certain properties of the inorganic colloidal fraction of Hawaiian soils: J. Soil Sci., v. 2. pp. 8396.CrossRefGoogle Scholar
Washington, H. S. and Keyes, M. G. (1928) Petrology of the Hawaiian Islands, VI. Maui: Amer. J. Sci., 5th ser., v. 15. pp. 199220.CrossRefGoogle Scholar
Wentworth, C. K., Wells, R. C. and Allen, V. T. (1940) Ceramic clay in Hawai: Amer. Min., v. 25, pp. 133.Google Scholar