Synthesis of a merlinoite-type zeolite with an enhanced Si/Al ratioviapore filling with tetraethylammonium cations

(Note: The full text of this document is currently only available in the PDF Version )

Philip A. Barrett, Susana Valencia and Miguel A. Camblor


Abstract

A merlinoite type zeolite with an enhanced Si/Al ratio (around 3.8) compared to known isostructural materials has been synthesised hydrothermally from a gel with Si/Al=5 in the presence of tetraethylammonium and K+ cations. The zeolite has been characterised by a number of techniques and in its calcined form the structure was refined from synchrotron powder X-ray diffraction data [a=14.1291(10), b=14.1308(10), c=9.9274(5)Å, Immm]. The different techniques reveal the enhanced Si/Al ratio of the zeolite. Tetraethylammonium is occluded within the tridimensional small pore channels, forcing the K+ and hence the Al content to diminish by 30–50% compared to conventional merlinoite-type zeolites. The thermal stability of the material is greatly improved, although if K+ cations in the zeolite are exchanged by NH4+ the stability decreases as a function of the degree of exchange, suggesting a low stability for the acidic form of merlinoite.


References

  1. R. Aiello and R. M. Barrer, J. Chem. Soc., A, 1970, 1470 RSC.
  2. R. M. Barrer and P. J. Denny, J. Chem. Soc., 1961, 971 RSC.
  3. H. M. Rietveld, J. Appl. Crystallogr., 1969, 2, 65 CrossRef CAS.
  4. A. Larson and R. B. Von Dreele, GSAS Manual, Los Alamos Report No. LA-UR-86-746.
  5. A. Bieniok, K. Bornholdt, U. Brendel and W. H. Baur, J. Mater. Chem., 1996, 6, 271 RSC.
  6. J. B. Hastings, W. Thomlinson and D. E. Cox, J. Appl. Crystallogr., 1984, 17, 85 CrossRef CAS.
  7. R. M. Barrer, Hydrothermal Chemistry of Zeolites, Academic Press, London, 1982 Search PubMed.
  8. M. A. Camblor and J. Pérez-Pariente, Zeolites, 1991, 11, 202 CAS.
  9. M. A. Camblor, A. Corma, A. Mifsud, J. Pérez-Pariente and S. Valencia, Stud. Surf. Sci. Catal., 1997, 105, 341.
  10. R. W. Tschernich, Zeolites of the World, Geoscience Press Inc., Phoenix, 1992 Search PubMed.
  11. R. J. Donahoe, B. C. Hemingway and J. G. Liou, Am. Mineral., 1990, 75, 188 CAS.
  12. L. P. Solov'eva, S. V. Borisov and V. V. Bakakin, Sov. Phys. Crystallogr., 1972, 16, 1035 Search PubMed.
  13. A. A. Belhekar, A. J. Chandwadkar and S. G. Hedge, Zeolites, 1995, 15, 535 CrossRef CAS.
  14. M. A. Camblor, A. Corma and S. Valencia, Microporous and Mesoporous Materials, in press Search PubMed.
  15. E. Galli, G. Gottardi and D. Pongiluppi, N. Jb. Miner. Mh., 1979, H.1, 1 Search PubMed.
  16. D. W. Breck, Zeolite Molecular Sieves: Structure, Chemistry and Use, John Wiley & Sons, New York, 1974 Search PubMed.
  17. J. M. Thomas, J. Klinowski, S. Ramdas, B. K. Hunter and D. T. B. Tennakoon, Chem. Phys. Lett., 1983, 102, 158 CrossRef CAS.
  18. R. Radeglia and G. Engelhardt, Chem. Phys. Lett., 1985, 114, 28 CrossRef CAS.
  19. W. M. Meier, D. H. Olson and Ch. Baerlocher, Atlas of Zeolite Structure Types, Elsevier, London, 4th edn., 1996 Search PubMed.
  20. Insight II, Biosym Technologies Inc., 9265 Scranton Road, San Francisco, 1994.
Click here to see how this site uses Cookies. View our privacy policy here.