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Elucidating Structural Mechanisms for Cordierite Ceramic Formation using Synchrotron Radiation

Published online by Cambridge University Press:  15 February 2011

Menno Oversluizen
Affiliation:
Affiliated with Netherlands Organisation for Scientific Research (NOW).
S. M. Clark
Affiliation:
SERC Daresbury Laboratory, Warrington WA4 4AD, UK
G. N. Greaves
Affiliation:
SERC Daresbury Laboratory, Warrington WA4 4AD, UK
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Abstract

Cr2O3 is a common nucleating agent useful for forming ceramics from oxide glasses. In this study we have used a variety of synchrotron radiation techniques to examine the atomic structure, crystallinity and microstructure of a magnesium alumino-silicate glass ceramic whose composition is close to that of the mineral cordierite, Mg2Al4Si5O13. X-ray Absorption spectra on the Cr K-edge have been performed with samples that were heat treated at different temperatures and times to examine the metamorphosis of the nucleating site. This study reveals that Cr3+ is always octahedrally coordinated with oxygen. In addition, the second nearest neighbour environment changes from an amorphous, single shell of Al/Si, but upon crystallisation, develops into a well ordered Al/Mg shell indicative of the formation of a dilute Cr spinel phase. Powder X-ray Diffraction (XRD) patterns, however, reveal that the major phase initially precipitated (˜900°C) is a stuffed quartz and from the lattice parameters that the composition is SiO2 -rich. With prolonged heat treatment a small quantity of a spinel phase emerges whose composition from its lattice parameter is close to MgAl2O4. Combined Small Angle X-ray Scattering (SAXS) and XRD establish that devitrification at these temperatures is associated with particles about 250 Å in size, on average. Energy dispersive powder diffraction patterns were collected in situ to observe changes in crystallinity with temperature and time. From these measurements the stuffed quartz phase identified at 900°C is found to be intermediate, being eventually replaced at higher temperatures by cordierite with a small quantity of spinel.

Type
Research Article
Copyright
Copyright © Materials Research Society 1993

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References

REFERENCES

1. McMillan, P. W., Glass-Ceramics: 2nd Edition, ©1979 by Academic Press, London Google Scholar
2. Applications of Synchrotron Radiation, ed. Catlow, C.R.A., and Greaves, , © 1990 Blackie, London CrossRefGoogle Scholar
3. Couves, J.W., Thomas, J.M., Waller, D., Jones, R.H., Dent, A.J., Derbyshire, G.E., Greaves, G.N., Nantre, 354, 465 (1991)Google Scholar
4. Bras, W., Derbyshire, G.E., Ryan, A.J., Mant, G., Greaves, G.N., Nucl. Inst. Meth. Phys. Res., A326, 587591 (1993)Google Scholar
5. Bridge, D.R., Holland, D., McMillan, P.W., Glass Technology, 26, 286292 (1985)Google Scholar
6. Watanabe, K., Giess, E.A., J. Am. Ceram. Soc., 68, C102–C103 (1985)Google Scholar
7. Dupon, R.W., Tanous, A. C., Thompson, M.S., Chem. Mater., 728731 (1990)Google Scholar
8. Kisilev, A., Reisfeld, R., Greenberg, E., Buch, A., Ish-Shalom, M., Chemical Physics Letters, 105 (1984)CrossRefGoogle Scholar
9. Adrianasolo, B., Champagnon, B., Esnouf, C., J. Non-Cryst. Solids, 126, 103110 (1990)Google Scholar
10. Durville, F., Champagnon, B., Duval, E., Boulon, G., Gaume, E, Wright, A.F., Fitch, A.N., Physics and Chemistry of Glasses, 25, 126133 (1984)Google Scholar
11. Dent, A.J., Derbyshire, G.E., Greaves, G.N., Ramsdale, C.R., Couves, J.W., Jones, R.H., Catlow, C.R.A., Thomas, J.M., S.PLE., 1550,97 (1991)Google Scholar
12. van der Hoek, M.J., Werner, W., van Zuylen, P., Dobson, B.R., Hasnain, S.S., Worgan, J.S., Luijckx, G., Nucl. Inst. Meth. Phys. Res., A246, 380384 (1986)CrossRefGoogle Scholar
13. Clark, S.M., Nucl. Inst. Meth. Phys. Res., A276, 381387 (1989)Google Scholar
14. Stephenson, P.C., Greaves, G.N., Gurman, S. J., Synchrotron Radiation News, 4, 29 (1991)CrossRefGoogle Scholar
15. Schreyer, W., Schairer, J.F., ZeitschriftftirKristallographie, 116, 6082 (1961)Google Scholar
16. Price, D.L., Moss, S.C., Reijers, R., Saboungi, M-L, Susman, S., J. Phys: Condens. Matter, 1, 1005 (1989); S.R. Elliott, Phys. Rev. Lett., 67, 711 (1991).Google Scholar