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Detailed Reference Information |
Hacker, B.R., Rubie, D.C., Kirby, S.H. and Bohlen, S.R. (2005). The calcite ¿ aragonite transformation in low-Mg marble: Equilibrium relations, transformation mechanisms, and rates. Journal of Geophysical Research 110: doi: 10.1029/2004JB003302. issn: 0148-0227. |
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Experimental transformation of a rather pure natural calcite marble to aragonite marble did not proceed via the expected straightforward polymorphic replacement. Instead, the small amount of Mg in the starting material (0.36 wt %) was excluded from the growing aragonite and diffused preferentially into the remaining calcite grains, producing Mg-rich calcite rods that persisted as relicts. Nucleation of aragonite occurred exclusively on grain boundaries, with aragonite <001> oriented subparallel to calcite <0001>. The aragonite crystals preferentially consumed the calcite crystal on which they nucleated, and the reaction fronts developed preferentially along the {010} and {110} planes of aragonite. Each aragonite neoblast that grew was nearly free of Mg (typically <0.1 wt %). The excess Mg was taken up by the calcite grains in between, stabilizing them and causing a few volume percent rodlike relicts of Mg-enriched calcite (up to 10 wt % MgO) to be left behind by the advancing reaction front. The aragonite growth rates are approximately linear and range from ~3 ¿ 10-11 m s-1 at 600¿C to ~9 ¿ 10-9 m s-1 at 850¿C, with an apparent activation enthalpy of 166 ¿ 91 kJ mol-1. This reaction mechanism and the resultant texture are akin to cellular precipitation reactions in metals. Similar transformation textures have been reported from high-Mg marbles in Japan and China that disproportionated to low-Mg calcite and dolomite. |
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Abstract |
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Keywords
Mineralogy and Petrology, Reactions and phase equilibria (1012, 8412), Mineralogy and Petrology, Experimental mineralogy and petrology, Mineralogy and Petrology, Metamorphic petrology, Mineralogy and Petrology, Petrography, microstructures, and textures, calcite, phase transformation, aragonite |
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Publisher
American Geophysical Union 2000 Florida Avenue N.W. Washington, D.C. 20009-1277 USA 1-202-462-6900 1-202-328-0566 service@agu.org |
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