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Ikaite (CaCO3.6H2O) compressibility at high water pressure: a synchrotron X-ray diffraction study

Published online by Cambridge University Press:  05 July 2018

A. R. Lennie*
Affiliation:
Daresbury Laboratory, Warrington, Cheshire WA4 4AD, UK
*

Abstract

Ikaite (CaCO3.6H2O), which forms in cold carbonate-rich marine environments, also crystallizes from calcite under aqueous conditions above ∼0.5 GPa at room temperature. Using synchrotron X-ray powder diffraction, measurements have been made of pressure-induced changes in unit-cell dimensions of ikaite contained in a diamond anvil cell. Ikaite shows anisotropic compressibility along the crystallographic axes in the order a > c > b up to 4 GPa. Comparison with other phases shows the relative volume compressibility of ikaite to be greater than that of gypsum (CaSO4.2H2O), calcite and aragonite. The volume of ikaite is less than that occupied by equivalent volumes of CaCO3 (calcite/aragonite) + 6H2O at all pressures below the freezing point (H2O(l) to ice VI). The bulk modulus of ikaite has been obtained from a fit to the Vinet equation of state, giving V0 = 760.3±0.1 Å3, K0 = 21.3±1.4 GPa, and K0' = 11.7±1.7. Dissolution of CaCO3 in H2O (l) at high pressure resulting in crystallization of CaCO3.6H2O suggests equilibrium behaviour between a carbonate-rich fluid species and the condensed hydrated calcium carbonate. The potential for ikaite as a candidate phase for water transport in cold subduction zones is considered.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2005

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References

Ahrens, T.J. (1989) Planetary origins: water storage in the mantle. Nature, 342, 122123.CrossRefGoogle Scholar
Angel, R.J. (2000a) High-pressure structural phase transitions. Pp. 85 — 102 in: Transformation Processes in Minerals (Redfern, S.A.T. and Carpenter, M.A., editors). Reviews in Mineralogy and Geochemistry, 39, Mineralogical Society of America, Washington, D.C.Google Scholar
Angel, R.J. (2000b) Equations of state. Pp. 3560 in: High-pressure, High-temperature Crystal Chemistry (Hazen, R.M. and Downs, R.T., editors). Reviews in Mineralogy and Geochemistry, 41, Mineralogical Society of America and the Geochemical Society, Washington, D.C.CrossRefGoogle Scholar
Bina, C.R. and Navrotsky, A. (2000) Possible presence of high-pressure ice in cold subducting slabs. Nature, 408, 844847.CrossRefGoogle ScholarPubMed
Bose, K. and Navrotsky, A. (1998) Thermochemistry and phase equilibria of hydrous phases in the system MgO-SiO2-H2O: Implications for volatile transport to the mantle. Journal of Geophysical Research, 103, 97139719.CrossRefGoogle Scholar
Bridgman, P.W. (1912) Water under pressure. Proceedings of the American Acadamy of Arts and Science, 48, 450558.Google Scholar
Bruker AXS (2003) TOPAS V2.1: General profile and structure analysis software for powder diffraction data. User's Manual, Bruker AXS, Karlsruhe, Germany.Google Scholar
Caciagli, N.C. and Manning, C.E. (2003) The solubility of calcite in water at 6-16 kbar and 500-800 degrees C. Contributions to Mineralogy and Petrology, 146, 275285.CrossRefGoogle Scholar
Desgreniers, S. (1997) SImPA User Guide and Tutorial. www.physics.uottawa.ca/phy/profs/desgreniers/SImPA/simpa.htmGoogle Scholar
Dickens, B. and Brown, W.E. (1970) The crystal structure of calcium carbonate hexahydrate at ∽—120°. Inorganic Chemistry, 9, 480486.CrossRefGoogle Scholar
Fei, Y.W., Mao, H.K. and Hemley, R.J. (1993) Thermal expansivity, bulk modulus, and melting curve of H2O-ice VII to 20 GPa.. Journal of Chemical Physics, 99, 53695373.CrossRefGoogle Scholar
Fein, J.B. and Walther, J.V. (1987) Calcite solubility in supercritical CO2-H2O fluids. Geochimica et Cosmochimica Acta, 51, 16651673.CrossRefGoogle Scholar
Grindley, T. and Lind, J.E. (1971) PVT properties of water and mercury. Journal of Chemical Physics, 54, 39833989.CrossRefGoogle Scholar
Hesse, K.-F. and Küppers, H. (1983) Refinement of the structure of ikaite, CaCO3.6H2O.. Zeitschrift für Kristallographie, 163, 227231.Google Scholar
Huang, E., Xu, J.-A., Lin, J.-F. and Hu, J.-Z. (2000) Pressure-induced phase transitions in gypsum. High Pressure Research, 17, 5775.CrossRefGoogle Scholar
Johnston, J., Merwin, H.E. and Williamson, E.D. (1916) The several forms of calcium carbonate. American Journal of Science, 41, 473512.CrossRefGoogle Scholar
Jorgensen, J.D. and Worlton, T.G. (1985) Disordered structure of D2O ice VII from in situ neutron powder diffraction. Journal of Chemical Physics, 83, 329333CrossRefGoogle Scholar
Kerrick, D.M. and Connolly, J.A.D. (2001) Metamorphic devolatilization of subducted marine sediments and the transport of volatiles into the Earth's mantle. Nature, 411, 293296.CrossRefGoogle ScholarPubMed
Krauss, F. and Schriever, W. (1930) Die Hydrate des Calciumcarbonates. Zeitschrift Anorganische Chemie, 188, 259273.CrossRefGoogle Scholar
Kuhs, W.F., Finney, J.L., Vettier, C. and Bliss, D.V. (1985) Structure and hydrogen ordering in ices VI, VII, and VIII by neutron powder diffraction. Journal of Chemical Physics, 81, 36123623.CrossRefGoogle Scholar
Le Bail, A., Duroy, H. and Fourquet, J.L. (1988) Ab initio structure determination of LiSbWO6 by X-ray powder diffraction. Materials Research Bulletin, 23, 447452.CrossRefGoogle Scholar
Lennie, A.R., Tang, C.C. and Thompson, S.P. (2004) The structure and thermal expansion behaviour of ikaite, CaCO3.6H2O, from T = 114 to T = 295 K. Mineralogical Magazine, 68, 135146.CrossRefGoogle Scholar
Mackenzie, E. (1923) Calcium carbonate hexahydrate. Journal of the Chemical Society, 188, 24092417.CrossRefGoogle Scholar
Mao, H.K, Xu, J. and Bell, P.M. (1986) Calibration of the ruby gauge to 800 kbar under quasihydrostatic conditions. Journal of Geophysical Research B, 91, 46734676.CrossRefGoogle Scholar
Marland, G. (1975) The stability of CaCO3.6H2O (ikaite). Geochimica et Cosmochimica Acta, 39, 8391.CrossRefGoogle Scholar
Martinez, I., Zhang, J. and Reeder, R.J. (1996) In situ X-ray diffraction of aragonite and dolomite at high pressure and high temperature: Evidence for dolomite breakdown to aragonite and magnesite. American Mineralogist, 81, 611624.CrossRefGoogle Scholar
Miletich, R., Allan, D.R. and Kuhs, W.F. (2000) High-pressure single-crystal techniques. Pp. 3560 in: High-pressure, High-temperature Crystal Chemistry (Hazen, R.M. and Downs, R.T., editors). Reviews in Mineralogy and Geochemistry, 41, Mineralogical Society of America and the Geochemical Society, Washington, D.C.Google Scholar
Pauly, H. (1963) “Ikaite”, a new mineral from Greenland. Arctic, 16, 263264.CrossRefGoogle Scholar
Pawley, A.R. and Holloway, J.R. (1993) Water sources for subduction zone volcanism — new experimental constraints. Science, 260, 664667.CrossRefGoogle ScholarPubMed
Peacock, S.M. (1990) Fluid processes in subduction zones. Science, 248, 329337.CrossRefGoogle ScholarPubMed
Pelouze, M.J. (1865) Sur une combinaison nouvelle d'eau et de carbonate de chaux. Chemical Review, 60, 429431.Google Scholar
Plank, T. and Langmuir, C.H. (1998) The chemical composition of subducting sediment and its consequences for the crust and mantle. Chemical Geology, 145, 325394.CrossRefGoogle Scholar
Prewitt, C.T. and Parise, J.B. (2000) Hydrous phases and hydrogen bonding at high pressure. Pp. 309333 in: High-pressure, High-temperature Crystal Chemistry (Hazen, R.M. and Downs, R.T., editors). Reviews in Mineralogy and Geochemistry, 41, Mineralogical Society of America and the Geochemical Society, Washington, D.C.CrossRefGoogle Scholar
Redfern, S.A.T. and Angel, R.J. (1999) High-pressure behaviour and equation of state of calcite, CaCO3 . Contributions to Mineralogy and Petrology, 134, 102106.CrossRefGoogle Scholar
Sanchez-Valle, C, Martinez, I., Daniel, I., Philippot, P., Bohic, S. and Simionovici, A. (2003) Dissolution of strontianite at high P-T conditions: An in-situ synchrotron X-ray fluorescence study. American Mineralogist, 88, 978985.CrossRefGoogle Scholar
Santillán, J. and Williams, Q. (2004) A high pressure X-ray diffraction study of aragonite and the post-aragonite phase transition in CaCO3 . American Mineralogist, 89, 13481352.CrossRefGoogle Scholar
Saul, A. and Wagner, W. (1989) A fundamental equation for water covering the range from the melting line to 1273 K at pressures up to 25 000 MPa. Journal of Physical and Chemical Reference Data, 18, 15371564.CrossRefGoogle Scholar
Shahar, A., Bassett, W.A., Mao, H.K., Chou, I.M and Mao, W. (2003) The stability of ikaite, CaCO3·6H2O at high pressure and temperature. GSA Conference Abstract, 2003 Seattle Annual Meeting, November 2-5, 2003.Google Scholar
Sharp, W.E. and Kennedy, G.C. (1965) The system CaO-CO2-H2O in the two phases region calcite and aqueous solution. Journal of Geology, 73, 391403.CrossRefGoogle Scholar
Stretton, I.C., Schofield, P.F., Hull, S. and Knight, K.S. (1997) The static compressibility of gypsum. Geophysical Research Letters, 24, 12671270.CrossRefGoogle Scholar
Swainson, I.P. and Hammond, R.P. (2003) Hydrogen bonding in ikaite, CaCO3.6H2O.. Mineralogical Magazine, 67, 555562.CrossRefGoogle Scholar
Van Valkenburg, A., Mao, H.K. and Bell, P.M. (1971) Ikaite (CaCO3.6H2O), a phase more stable than calcite and aragonite (CaCO3) at high water pressure. Carnegie Institution Geophysical Laboratory, Annual Report of the Director, pp. 233237.Google Scholar
Vinet, P., Ferrante, J., Smith, J.R. and Rose, J.H. (1986) A universal equation of state for solids. Journal of Physics C, 19, L467473.CrossRefGoogle Scholar
Vinet, P., Ferrante, J., Rose, J.H. and Smith, J.R. (1987) Compressibility of solids. Journal of Geophysical Research, 92, 93199325.CrossRefGoogle Scholar
Wagner, W., Saul, A. and Pruβ, A. (1994) International equations for the pressure along the melting and along the sublimation curve of ordinary water substance.. Journal of Physical and Chemical Reference Data, 23, 515527.CrossRefGoogle Scholar