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American Mineralogist
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American Mineralogist; August-September; v. 94; no. 8-9; p. 1205-1215; DOI: 10.2138/am.2009.3177
© 2009 Mineralogical Society of America
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Simultaneous aluminum, silicon, and sodium coordination changes in 6 GPa sodium aluminosilicate glasses

Kimberly E. Kelsey1,*, Jonathan F. Stebbins1, Jed L. Mosenfelder2 and Paul D. Asimow2

1 Department of Geological and Environmental Sciences, Stanford University, Stanford, California 94305-2115, U.S.A.
2 Division of Geological and Planetary Sciences, California Institute of Technology, Pasadena, California 91125, U.S.A.

Correspondence: * E-mail: kkelsey{at}stanford.edu

We present the first direct observation of high-coordinated Si and Al occurring together in a series of high-pressure sodium aluminosilicate glasses, quenched from melts at 6 GPa. Using 29Si MAS NMR, we observe that a small amount of Al does not have a significant effect on the amount of VSi or VISi generated, but that larger Al concentrations lead to a gradual decrease in both these species. 27Al MAS NMR spectra show that samples with small amounts of Al have extremely high mean Al coordination values of up to 5.49, but that larger Al concentrations cause a gradual decrease in both VAl and VIAl. Although mean Al and Si coordination numbers both decrease with increasing Al contents, the weighted combined (Al+Si) coordination number increases. Silicon and Al resonances shift in frequency with increasing pressure or changing Al concentration, indicating additional structural changes, including compression of network bond angles. Increases in the 23Na isotropic chemical shifts indicate decreases in the mean Na-O bond lengths with increasing pressure, which are more dramatic at higher Al contents. Recovered glass densities are about 10 to 15% greater than those of similar ambient pressure samples. However, the density increases due to the combined coordination changes of Al and Si are estimated to total only about 1 to 2%, and are roughly constant with composition despite the large effects of Al content on the individual coordinations of the two cations. Thus, effects of other structural changes must be significant to the overall densification. Apparent equilibrium constants for reactions involving the generation of high-coordinated species show systematic behavior, which suggests an internal consistency to the observed Si and Al coordination number shifts.

Key Words: NMR • aluminosilicate • glass • high pressure • coordination • aluminum • silicon • sodium







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