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Clays pillared by zirconia nanoparticles: structure, adsorption and catalytic properties

Published online by Cambridge University Press:  15 February 2011

Vladislav A. Sadykov
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Tatyana G. Kuznetsova
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Rimma V. Bunina
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Natalya V. Mezentseva
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Dmitrii K. Efremov
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Vasilii I. Avdeev
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Vladimir P. Doronin
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Vladimir L. Kuznetsov
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Aleksander M. Volodin
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Eugenii A. Paukshtis
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Galina M. Alikina
Affiliation:
Boreskov Institute of Catalysis SB RAS, pr. Lavrentieva, 5, 630090, Novosibirsk; sadykov@catalysis.nsk.su
Valerii A. Matyshak
Affiliation:
Semenov Institute of Chemical Physics, Moscow, Russia
Valerii V. Lunin
Affiliation:
Chemical Department of Moscow State University, Moscow, Russia;
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Abstract

Modeling of high resolution nitrogen adsorption isotherms by the Grand Canonical Monte Carlo (GCMC) method for zirconia-pillared clays containing 20 wt.% of ZrO2 revealed that the pillars are comprised of separate Zr4(μ-OH)8(OH)m (H2O)n units (Zr4 tetramers) and their dimers (Zr8 complexes) as sheets or loose 3D structures. This agrees with the results of modeling of the condensation process in solution using the Density Functional Theory approach (DFT) and the semiempirical PM3 method. Bridging and terminal hydroxyls strongly bound with Zr cations are involved in anchoring supported Cu cations and Pt. This nanostructure of the active component as well as the developed micro- and mesoporosity appear to be responsible for the high performance of Pt+Cu/ZrPILC catalysts in the NOx selective reduction by propylene and decane in realistic feeds.

Type
Research Article
Copyright
Copyright © Materials Research Society 2005

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References

1. Sadykov, V.A., Kuznetsova, T.G. et al. , Chemistry for Sustain. Developm. 11, 249 (2003).Google Scholar
2. Kuznetsova, T.G., Sadykov, V.A. et al. , RF Patent No. 2194573 of 17.09.01.Google Scholar
3. Sadykov, V. A., Kuznetsova, T.G. et al. . Mat. Res. Symp. Proc. 703, 529 (2002).Google Scholar
4. Sadykov, V.A. et al. , Topics in Catalysis 32, 29 (2005).Google Scholar
5. Fenelonov, V. B., Derevyankin, A. Yu., Sadykov, V. A., Micropor. Mesopor. Mater. 47, 359 (2001).Google Scholar
6. Hu, M. Z-C., Zielke, J., Lin, J-S., Byers, Ch. H., J. Mater. Res. 14, 103 (1999).Google Scholar
7. Anpo, M., Che, M., Fubini, B., Garrone, E., Giamelo, E., Topics in Catal. 8, 189 (1999).Google Scholar
8. Sadykov, V. A. et al. , Polish J. Environ. Stud. 6, 21 (1997).Google Scholar
9. Sadykov, V. A., Lunin, V.V., Matyshak, V.A. et al. , Kinetika I Kataliz 44, 412 (2003).Google Scholar
10. Inorganic crystal structure database (ICSD). Canad. Journ. Chem. 46, 3491 (1968).Google Scholar
11. Allinger, N.L., J. Am. Chem. Soc. 99, 8127 (1977).Google Scholar
12. Parr, R.G., Yang, W., Density-Functional Theory of Atoms and Molecules, Oxford University Press, New York, 1989.Google Scholar
13. Kohn, W., Sham, L.S., Phys. Rev. A 140, 1133 (1965).Google Scholar
14. Frisch, M. J., Trucks, G. W., Schlegel, H. B. at al., Gaussian 98, Revision A.11, Gaussian, Inc., Pittsburgh PA, 2001.Google Scholar
15. Becke, A.D., Phys. Rev. A 38, 3098 (1988).Google Scholar
16. Becke, A.D., J. Chem. Phys. 98, 5648 (1993).Google Scholar
17. Lee, C., Yang, W., Parr, R.G., Phys. Rev. B 37, 785 (1988).Google Scholar
18. Krishnan, R., Seger, J. S., Pople, J. A., J. Chem. Phys. 72, 650 (1980).Google Scholar
19. Stevens, W., Bash, H., Krauss, J., J. Chem. Phys. 81, 6026 (1984).Google Scholar
20. Cundari, T. R., Stevens, W. J., J. Chem. Phys. 98, 5555 (1993).Google Scholar
21. Cao, D., Wang, W. and Duan, X. J. Colloid Interface Sci. 254, 1 (2002).Google Scholar
22. Efremov, D.K., Kuznetsova, T.G., Doronin, V.P., Sadykov, V.A., J. Phys. Chem. B 109, 7451 (2005).Google Scholar
23. Delahay, G., Ensuque, E., Coq, B. and Figueras, F., J. Catal. 175, 7 (1998).Google Scholar
24. Chernyshov, K. A., PhD thesis. Moscow Textiles State Univ., 2005.Google Scholar
25. Sadykov, V.A., Bunina, R.V., Alikina, G.M. et al. ., J. Catal. 200, 117 (2001).Google Scholar
26. Konin, G. A., Il'ichev, A. N., Matyshak, V. A. et al. Topics in Catalysis, 17, 193 (2001).Google Scholar