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Hydrothermal Synthesis of Corrensite: A Study of the Transformation of Saponite to Corrensite

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Clays and Clay Minerals

Abstract

Hydrothermal synthesis experiments were conducted to study the transition from smectite to corrensite. A mixture of oxides with the bulk composition of corrensite—Na0.4(Si6.4Al1.6)(Mg7..8Al1.2)-O20(OH)10—was sealed in platinum capsules with 29–37 wt. % water. One set of samples was treated in cold-seal vessels at 500°C and 2 kbar for durations of 2, 3, 6, 12, and 24 h; the other set was treated at 350°C and 2 kbar for periods of 12 to 89 d. X-ray diffraction patterns (XRD) of oriented aggregates from treated products were obtained from ethylene glycol-solvated and air-dried preparations. Samples were also heated to 350°C either in a calibrated muffle furnace, removed and quickly placed in a nitrogen filled chamber on the diffractometer, or were heated at 350°C by using a calibrated heating stage mounted on the diffractometer.

Initial mineral assemblages at both temperatures contained only saponite and serpentine. In experiments at 500°C, saponite transformed to corrensite within 6 h; in experiments at 350°C, the transformation occurred as early as 22 d. Increased experiment times at both temperatures produced increasing amounts of well-crystallized corrensite, as indicated by several well-defined XRD peaks. No evidence of a randomly interstratified chlorite-smectite (C-S) precursor to corrensite was found. The identification of pure smectite, as opposed to highly-expanded randomly interstratified C-S, was possible only when clays were dehydrated on a heating stage on the diffractometer.

These results call for a new examination of hydrothermally-altered basalt that has been reported to contain randomly interstratified C-S as an intermediate step in the reaction of smectite to corrensite or chlorite. These results also strengthen the view held by increasing numbers of investigators that corrensite should be regarded as a single phase, not as a mixed-layered phyllosilicate.

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References

  • Beaufort, D., Baronnet, A., Lanson, B., and Meunier, A. (1997) Corrensite: A single phase or a mixed-layer phyllosilicate in the saponite-to-chlorite conversion series? a case study of Sancerre-Couy deep drill hole (France). American Mineralogist, 82, 109–124.

    Article  Google Scholar 

  • Bettison, L.A. and Sciffman, P. (1988) Compositional and structural variations of phyllosilicates from the Point Sal ophiolite, California. American Mineralogist, 73, 62–76.

    Google Scholar 

  • Bettison-Varga, L. and Mackinnon, I.D.R. (1997) The role of randomly mixed-layered chlorite/smectite in the transformation of smectite to chlorite. Clays and Clay Minerals, 45, 506–516.

    Article  Google Scholar 

  • Inoue, A. and Utada, M. (1991) Smectite-to-chlorite transformation in thermally metamorphosed volcanoclastic rocks in the Kamkita area, northern Honshu, Japan. American Mineralogist, 76, 628–640.

    Google Scholar 

  • Kristmannsdottir, H. (1979) Alteration of basaltic rocks by hydrothermal activity at 100-300°C. Developments in Sedimentology, 27, 359–367.

    Article  Google Scholar 

  • Luttge, A. and Metz, P. (1991) Mechanism and kinetics of the reaction 1 dolomite + 2 quartz = 1 diopside + 2 CO2 investigated by powder experiments. Canadian Mineralogist, 29, 803–821.

    Google Scholar 

  • Luttge, A. and Metz, P. (1993) Mechanism and kinetics of the reaction 1 dolomite + 2 quartz. = 1 diopside + 2 CO2: A comparison of rock-sample and of powder experiments. Contributions to Mineralogy and Petrology, 115, 155–164.

    Article  Google Scholar 

  • MacEwan, D.M.C. and Wilson, M.J. (1980) Interlayer and intercalation complexes of clay minerals. In Crystal Structures of Clay Minerals and Their X-ray Identification, G.W. Brindley and G. Brown eds., Mineralogical Society, London, 197–248.

    Google Scholar 

  • McCarty, D.K. and Reynolds, R.C., Jr. (1995) Rotationally disordered illite/smectite in Paleozoic K-bentonites. Clays and Clay Minerals, 43, 271–283.

    Article  Google Scholar 

  • Moore, D.M. and Reynolds, R.C. (1997) X-ray Diffraction and the Identification and Analysis of Clay Minerals (2nd edition). Oxford University Press, New York, 378 pp.

    Google Scholar 

  • Mooney, R.W., Keenan, A.C., and Wood, L.A. (1952) Adsorption of water vapor by montmorillonite. Journal of the American Chemical Society, 74, 1367–1374.

    Article  Google Scholar 

  • Reynolds, R.C. (1985) NEWMOD. A computer program for the calculation of the basal diffraction intensities of mixed-layered clay minerals. R. C. Reynolds, 8 Brook Rd., Hanover, New Hampshire.

    Google Scholar 

  • Reynolds, R.C. (1993) Three-dimensional powder X-ray diffraction from disordered illite: Simulation and interpretation of the diffraction patterns. In Computer Applications to X-ray Diffraction Methods, R.C. Reynolds, and J. Walker, eds., Clay Minerals Society Workshop, 44–78.

    Google Scholar 

  • Robinson, D., Bevins, R.E., and Rowbotham, G. (1993) The characterization of mafic phyllosilicates in low-grade metabasalts from eastern Greenland. American Mineralogist, 78, 377–390.

    Google Scholar 

  • Schiffman, P. and Fridleiffson, G.O. (1991) The smectite-chlorite transition in drillhole NJ-15, Nesjavellir geothermal field, Iceland: XRD, BSE and electron microprobe investigations. Journal of Metamorphic Geology, 9, 679–696.

    Article  Google Scholar 

  • Schiffman, P. and Staudigel, H. (1995) The smectite to chlorite transition in a fossil seamount hydrothermal system: The basement complex of La Palma, Canary Islands. Journal of Metamorphic Geology, 13, 487–498.

    Article  Google Scholar 

  • Shau, Y-H., Peacor, D.R., and Essene, S.E. (1990) Corrensite and mixed-layer chlorite/corrensite in metabasalt from northern Taiwan: TEM/AEM, EMPA, XRD and optical studies. Contributions to Mineralogy and Petrology, 105, 123–142.

    Article  Google Scholar 

  • Shau, Y-H., and Peacor, D.R. (1992) Phyllosilicates in hydro-fhermally altered basalts from DSDP Hole 504B, Leg 83—a TEM and AEM study. Contributions to Mineralogy and Petrology, 112, 119–133.

    Article  Google Scholar 

  • Siefert, K. (1970) Low-temperature compatibility relations of cordierite in haplopelites of the system K2O-MgO-Al2O3-SiO2-H2O. Journal of Petrology, 11, 73–99.

    Article  Google Scholar 

  • Veblen, D.R., Guthrie, G.D., Jr., Livi, K.J.T., and Reynolds, R.C., Jr. (1990) High-resolution transmission electron microscopy and electron diffraction of mixed-layer illite/smectite: Experimental results. Clays and Clay Minerals, 38, 1–13.

    Article  Google Scholar 

  • Velde, B. (1973) Phase equilibrium in the system MgO-Al2O3-SiO2-H2O. Mineralogical Magazine, 39, 297–312.

    Article  Google Scholar 

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Roberson, H.E., Reynolds, R.C. & Jenkins, D.M. Hydrothermal Synthesis of Corrensite: A Study of the Transformation of Saponite to Corrensite. Clays Clay Miner. 47, 212–218 (1999). https://doi.org/10.1346/CCMN.1999.0470211

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  • DOI: https://doi.org/10.1346/CCMN.1999.0470211

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