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Synthesis And Characterization Of Pillared Acid-Activated Montmorillonites

Published online by Cambridge University Press:  15 February 2011

Robert Mokaya
Affiliation:
Chemistry Department, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, England.
William Jones
Affiliation:
Chemistry Department, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, England.
Mavis E. Whittle
Affiliation:
Laporte Research and development, Moorfield Road, Widnes, WA8 OFE, England.
Mary E. Davies
Affiliation:
Laporte Research and development, Moorfield Road, Widnes, WA8 OFE, England.
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Abstract

Polymeric hydroxy-Al cations were introduced into the interlayer of acid-activated montmorillonites by cation exchange. The resulting pillared materials possessed layer spacings of 18 – 20 Å, surface areas between 250 – 320 m2/g, pore volumes in the range 0.3 – 0.38 cc/g and pore diameters in the range 32 – 40 Å depending on preparation procedures (i.e pillaring temperature and drying method). Powder XRD analysis indicated that the pillars formed were stable to temperatures above 500 °C. The surface acidity of these type of pillared clays was higher than that of pillared non-activated clays. Preliminary studies on their adsorption capacity for chlorophyll showed that they were superior to pillared non-activated clays.

Type
Research Article
Copyright
Copyright © Materials Research Society 1991

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References

REFERENCES

1. Brindley, G.W. and Yamanaka, S., Clays and Clay Minerals, 26, 21 (1978); Amer. Mineral., 6A, 830 (1979).Google Scholar
2. Occelli, M.C. and Tindwa, R.M., Clays and Clay Minerals, 31, 22 (1983).Google Scholar
3. Tennakoon, D.T.B., Jones, W. and Thomas, J.M., J. Chem. Soc., Faraday Trans. I 82, 3081 (1986)Google Scholar
4. Pinnavaia, T.J., Tzou, M.S., Landau, S.D. and Raythatha, R.H., J. Mol. Cat., 27, 195 (1984).CrossRefGoogle Scholar
5. Figueras, F., Cat. Rev. Sci. Eng., 30, 457 (1988)Google Scholar
6. Bellatoni, A., Plee, D. and Meriaudeau, P., Applied Cat., 63, 1.7 (1990).Google Scholar
7. Stacey, M.H., Catalysis Today, 2, 621 (1988).Google Scholar
8. Zelke, R.C. and Pinnavaia, T.J., Clays and Clay Minerals, 36, 403 (1988).Google Scholar
9. Battioni, P., Lallier, J.P., Barloy, L. and Mansuy, D., J. Chem. Soc., Chem. Comm., 16, 1149 (1989); L. Barloy, J.P. Lallier, P. Battioni, D. Mansuy, Y. Piffard, M. Tournoux, J.B. Valim and W. Jones, In Press (1991).Google Scholar
10. Taylor, D.R. and Jenkins, D.B., Soc. Min. Eng. AIME Trans., 282, 1901 (1986)Google Scholar
11. Mokaya, R. and Jones, W., Unpublished results.Google Scholar
12. Morgan, D.A., Shaw, D.B., Sidebottom, M.J., Soon, T.C. and Taylor, R.S., J.A.O.C.S., 62, 292 (1986)Google Scholar
13. Taylor, D.R., Jenkins, D.B. and Ungerman, C.B., J.A.O.C.S., 66, 334 (1989).Google Scholar
14. Moini, A. and Pinnavaia, T.J., Solid State Ionics, 26, 119 (1988).Google Scholar
15. Singh, S. S. and Kodama, H., Clays and Clay Minerals, 36, 397 (1988).Google Scholar
16. Tichit, D. and Figueras, F, in Pillared Layer Structures: Current Trends and Applications, Ed. Mitchel, I.V. (Elsevier Science Publishers, London) p.149 (1990).Google Scholar
17. Frenkel, M., Clays and Clay Minerals, 22, 435 (1974).Google Scholar
18. Bartley, G.J.J. and Burch, R., Applied Cat., 19, 175 (1985).Google Scholar