Carbon enters silica forming a cristobalite-type CO2-SiO 2 solid solution

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Abstract

Extreme conditions permit unique materials to be synthesized and can significantly update our view of the periodic table. In the case of group IV elements, carbon was always considered to be distinct with respect to its heavier homologues in forming oxides. Here we report the synthesis of a crystalline CO2-SiO2 solid solution by reacting carbon dioxide and silica in a laser-heated diamond anvil cell (P=16-22 GPa, T>4,000 K), showing that carbon enters silica. Remarkably, this material is recovered to ambient conditions. X-ray diffraction shows that the crystal adopts a densely packed α-cristobalite structure (P41212) with carbon and silicon in fourfold coordination to oxygen at pressures where silica normally adopts a sixfold coordinated rutile-type stishovite structure. An average formula of C0.6(1) Si0.4(1)O2 is consistent with X-ray diffraction and Raman spectroscopy results. These findings may modify our view on oxide chemistry, which is of great interest for materials science, as well as Earth and planetary sciences. © 2014 Macmillan Publishers Limited.

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Santoro, M., Gorelli, F. A., Bini, R., Salamat, A., Garbarino, G., Levelut, C., … Haines, J. (2014, April 30). Carbon enters silica forming a cristobalite-type CO2-SiO 2 solid solution. Nature Communications. Nature Publishing Group. https://doi.org/10.1038/ncomms4761

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