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Iron oxides in tropical soils on various parent materials

Published online by Cambridge University Press:  09 July 2018

W. Wiriyakitnateekul
Affiliation:
Office of Science for Land Development, Land Development Department, Chatuchak, Bangkok 10900, Thailand Department of Soil Science, Faculty of Agriculture, Kasetsart University, Bangkok 10900, Thailand
A. Suddhiprakarn*
Affiliation:
Department of Soil Science, Faculty of Agriculture, Kasetsart University, Bangkok 10900, Thailand
I. Kheoruenromne
Affiliation:
Department of Soil Science, Faculty of Agriculture, Kasetsart University, Bangkok 10900, Thailand
M. N. Smirk
Affiliation:
School of Earth and Geographical Sciences, Faculty of Natural and Agricultural Sciences, University of Western Australia, Crawley, WA 6009, Australia
R. J. Gilkes
Affiliation:
School of Earth and Geographical Sciences, Faculty of Natural and Agricultural Sciences, University of Western Australia, Crawley, WA 6009, Australia
*

Abstract

Twenty nine Fe oxide concentrates of Thai soils formed on basalt, sandstone, shale/limestone and granite were investigated. Goethite and hematite are relatively more abundant in granitic and basaltic soils, respectively. Values of Feo/Fed range from 0.01 to 0.28 indicating that free Fe oxides are mostly crystalline.

There are no systematic differences in unit-cell dimensions for goethite and hematite in soils on different parent materials. Mean crystallite dimensions calculated from the 110 reflections are greater for hematite than for goethite. Aluminium substitution varies from 8 to 24 mole% for goethite and from 4 to 17 mole% for hematite. The dehydroxylation temperature for goethite ranges from 285ºC to 320ºC. The goethite in basaltic soils has a smaller crystal size and Al substitution, as well as a lower dehydroxylation temperature, compared to soils on other parent materials. The dehydroxylation temperature of goethite is positively related to Al substitution (R = +0.58), MCD110 (R = +0.49) and Ald (R = +0.53). The Mn, Ni, Cr, V and P in these soils occur in Fe oxides rather than as discrete minerals.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2007

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References

Anand, R.R. & Gilkes, R.J. (1987) Variations in the properties of iron oxides within individual specimens of lateritic duricrust. Australian Journal of Soil Research, 25, 287302.CrossRefGoogle Scholar
Anjos, L.H., Fernandes, M.R., Pereira, M.G. & Franzmeir, D.P. (1998) Landscape and pedogenesis of an Oxisol-Inceptisol-Ultisol sequence in Southen Brazil. Soil Science Societyof America Journal, 62, 16511658.Google Scholar
Barnhisel, R.I. & Bertsch, P.M. (1989) Chlorites and hydroxy-interlayered vermiculite and smectite. Pp. 729788 in: Minerals in Soil Environments, 2 nd edition (Dixon, J.B. & Weed, S.B., editors). Soil Science Society of America, Madison, Wisconsin, USA.Google Scholar
Blume, H.P. & Schwertmann, U. (1969) Genetic evaluation of profile distribution of Al, Fe and Mn oxides. Soil Science Societyof America Proceedings, 33, 438444.CrossRefGoogle Scholar
Boero, V., Premoli, A., Melis, P., Barberis, E. & Arduino, E. (1992) Influence of climate on the iron oxide mineralogy of terra rossa. Clays and Clay Minerals, 40, 813.Google Scholar
Brown, G. (1980) Associated minerals. Pp. 361410 in: Crystal Structures of Clay Minerals and their X-ray Identification (Brindley, G.W. & Brown, G., editors). Mineralogical Society Monograph 5, London.CrossRefGoogle Scholar
Campbell, A.S. & Schwertmann, U. (1984) Iron oxide mineralogy of placic horizons. Journal of Soil Science, 53, 569582.Google Scholar
Day, D.R. (1965) Particle fractionation and particle-size analysis. Pp. 545566 in: Methods of Soil Analysis, Part I: Physical and Mineralogical Methods (Black, C.A., editor). Monograph 9, American Society of Agronomy, Madison, Wisconsin, USA.Google Scholar
Fey, M.V. & Dixon, J.B. (1981) Synthesis and properties of poorly crystalline hydrated aluminous goethite. Clays and Clay Minerals, 29, 91100.CrossRefGoogle Scholar
Fitzpatrick, R.W. & Schwertmann, U. (1982) Al-substitution in goethite: an indicator of pedogenic and other weathering environments in South Africa. Geoderma, 27, 335347.Google Scholar
Fontes, M.P.F. & Weed, S.B. (1991) Iron oxides in selected Brazilian Oxisols: I. Mineralogy. Soil Science Societyof America Journal, 55, 11431149.Google Scholar
Fontes, M.R., Weed, S.B. & Bowen, L.H. (1992) Association of microcrystalline goethite and humic acid in some Oxisols from Brazil. Soil Science Societyof America Journal, 56, 982990.Google Scholar
Holmgren, G.G.S. (1967) A rapid citrate-dithionite extractable iron procedure. Soil Science Societyof America Proceedings, 24, 420421.Google Scholar
JCPDS (1953) Mineral Powder Diffraction File. Group Data Book, Pennsylvania, USA.Google Scholar
Kampf, N. & Schwertmann, U. (1982) The 5-M-NaOH concentration treatment for iron oxides in soils. Clays and Clay Minerals, 30, 401408.Google Scholar
Klug, H.P. & Alexander, L.E. (1974) X-ray Diffraction Procedures for Polycrystalline and Amorphous Materials, 2 nd edition. John Wiley & Sons Inc., New York.Google Scholar
Lim-Nunez, R. & Gilkes, R.J. (1987) Acid dissolution of synthetic metal-containing goethites and hematites. Pp. 197204 in: Proceedings of the International ClayConference (Schultz, L.G.., Van Olphen, H. & Mumpton, F.A., editors). The Clay Minerals Society, Bloomington, Indiana.Google Scholar
MacKenzie, R.C. & Berggren, G. (1970) Oxides and hydroxides of higher valency elements. Pp. 271302 in: Differential Thermal Analysis, Part I (MacKenzie, R.C., editor). Academic Press, New York.Google Scholar
Mehra, O.P. & Jackson, M.L. (1960) Iron oxide removal from soils and clays by a dithionate-citrate system buffered with sodium bicarbonate. Clays and Clay Minerals, 7, 317327.CrossRefGoogle Scholar
Mosugu, M.E., Chude, V.O., Esu, I.E., Parmwang, T.K. & Malgwi, W.B. (1999) Contents and profile distribution of three forms of free iron oxides in three Ultisols and an Alfisol in Nigeria. Communications in Soil Science and Plant Analysis, 30, 10131024.Google Scholar
Munoz, M.A. & Bigham, J.M. (1992) Mineralogy of Nipe clay. Journal of Agriculture Universityof Puerto Rico, 76, 107117.Google Scholar
Natural Resources Conservation Service (1996) Soil Survey Laboratory Methods Manual. Soil Survey Investigation Report 42, version 3.0. United States Department of Agriculture.Google Scholar
Norrish, K. (1975) Geochemistry and mineralogy of trace elements. Pp. 5582 in: Trace Elements in Soil-Plant-Animal Systems (Nicholas, D.J.D. & Egan, A.R., editors). Academic Press, New York.Google Scholar
Norrish, K. & Hutton, J.T. (1969) An accurate X-ray spectrographic method for the analysis of a wide range of geological samples. Geochimica et Cosmochimica Acta, 33, 431453.Google Scholar
Norrish, K. & Taylor, R.M. (1961) The isomorphous replacement of iron by aluminium in soil goethite. Journal of Soil Science, 12, 294306.Google Scholar
Pena, F. & Torrent, J. (1984) Relationships between phosphate sorption and iron oxides in Alfisols from a river terrace sequence of Mediterranean Spain. Geoderma, 33, 283296.CrossRefGoogle Scholar
Prasetyo, B.H. & Gilkes, R.J. (1994) Properties of iron oxides from red soils derived from volcanic tuff in West Java. Australian Journal of Soil Science, 32, 781794.Google Scholar
Rayment, G.E. & Higginson, E.R. (1992) Australian LaboratoryHandbook of Soil and Water Chemical Methods: Australian Soil and Land Survey Handbook. Inkata, Melbourne, Australia.Google Scholar
Schulze, D.G. (1984) The influence of aluminum on iron oxides. VIII. Unit cell dimensions of Al-substituted goethite and estimation of Al from them. Clays and ClayMinerals, 32, 3644.Google Scholar
Schulze, D.G. & Schwertmann, U. (1984) The influence of aluminium on iron oxides: X. Properties of Al substituted goethites. ClayMinerals, 19, 521539.Google Scholar
Schwertmann, U. (1984) The double dehydroxylation peak of goethite. Thermochimica Acta, 78, 3946.CrossRefGoogle Scholar
Schwertmann, U. (1985) The effect of pedogenic environments on iron oxide minerals. Advances in Soil Science, 1, 172200.Google Scholar
Schwertmann, U. & Kampf, N. (1985) Properties of goethite and hematite in kaolinitic soils of southern and central Brazil. Soil Science, 139, 344350.Google Scholar
Schwertmann, U. & Latham, M. (1986) Properties of iron oxides in some New Caledonian Oxisols. Geoderma, 39, 106123.CrossRefGoogle Scholar
Schwertmann, U. & Taylor, R.M. (1989) Iron oxides. Pp. 379438 in: Minerals in Soil Environments, 2nd edition (Dixon, J.B. & Weed, S.B., editors). Soil Science Society of America, Madison, Wisconsin.Google Scholar
Schwertmann, U., Fitzpatrick, R.W., Taylor, R.M. & Lewis, D.G. (1979) The influence of aluminum on iron oxides, II. Preparation and properties of Al-substituted hematites. Clays and Clay Minerals, 27, 105112.Google Scholar
Singh, B. & Gilkes, R.J. (1991) Concentration of iron oxides from soil clays by 5 M NaOH treatment: the complete removal of sodalite and kaolin. Clay Minerals, 26, 463472.Google Scholar
Singh, B. & Gilkes, R.J. (1992a) XPAS: an interactive program to analyse X-ray powder diffraction patterns. Powder Diffraction, 7, 610.CrossRefGoogle Scholar
Singh, B. & Gilkes, R.J. (1992b) Properties and distribution of iron oxides and their association with minor elements in the soils of south-western Australia. Journal of Soil Science, 43, 7798.Google Scholar
Siradz, S.A. (2000) Mineralogyand chemistryof red soils of Indonesia. Ph.D thesis, University of Western Australia, Australia.Google Scholar
Suddhiprakarn, A., Kheoruenromne, I., Sindhusen, P. & Yoothong, K. (1985) Clay minerals and iron oxides of selected red and yellow soils in north-east plateau and south coast Thailand. Kasetsart Journal (Natural Science), 19, 265271.Google Scholar
Torrent, J., Schwertmann, U. & Schulze, D.G. (1980) Iron oxide mineralogy of some soils of two river terrace sequences in Spain. Geoderma, 23, 191208.Google Scholar
Trakoonyingcharoen, P., Kheoruenromne, I., Suddhiprakarn, A. & Gilkes, R.J. (2006) Properties of iron oxides in red Oxisols and red Ultisols as affected by rainfall and soil parent materials. Australian Journal of Soil Research, 44, 6370.Google Scholar
Yoothong, K., Moncharoen, L., Vijarnsorn, P. & Eswaran, H. (1997) Clay mineralogy of Thai soils. Applied ClayScience, 11, 357371.Google Scholar
Yoshinaga, N., Yoshiro, K. & Makoto, N. (1989) Mineralogy of red- and yellow-colored soils from Thailand. Soil Science and Plant Nutrition, 35, 181205.Google Scholar