On the structure sensitivity of CO oxidation on alumina supported Pd-Pt bimetallic catalysts

On the structure sensitivity of CO oxidation on alumina supported Pd-Pt bimetallic catalysts

CO oxidation reaction was studied over monometallic and bimetallic palladium–platinum catalysts at 25:75, 50:50, and 75:25 Pd:Pt atomic fractions co-impregnated over a $gamma$ -Al2O3 support. The size of the metal particles, measured by modified hydrogen chemisorption, increased as the Pd fractions in the catalyst increased. The surface compositions and site metal distributions of the catalysts determined from Monte Carlo simulations indicated that Pd atoms segregated to the surface: at low Pd levels, Pd occupied preferentially 6 and 7 coordinated defect-like sites. As the Pd fraction increased, first 8 coordinated (100) and then 9 coordinated (111) planes were populated. At low temperatures (below 423 K), CO oxidation reaction over bi-metallic catalysts behaved like the monometallic Pd catalyst suggesting that Pd atoms segregated to the surface. The results of Monte Carlo studies and reaction tests together were interpreted as the governing steps in CO oxidation primarily taking place at the defect-like sites.

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  • 1. Persson, K.; Jansson, K.; Jaras, S. G. J. Catal. 2007, 245, 401–414.
  • 2. Strobel, R.; Grunwaldt, J.-D.; Camenzind, A.; Pratsinis, S. E.; Baiker, A. Catal. Lett. 2005, 104, 9–16.
  • 3. Persson, K.; Ersson, A.; Jansson, K.; Fierro, J.L.G.; J¨ar˚as, S.G. J. Catal. 2006, 243, 14–24.
  • 4. Liotta, L.F.; Di Carlo, G.; Pantaleo, G.; Deganello, G.; Borla, E. M.; Pidria, M. Catal. Commun. 2007, 8, 299–304.
  • 5. Lapisardi, G.; Urfels, L.; G´elin, P.; Primet, M.; Kaddouri, A.; Garbowski, E.; Toppi, S.; Tena, E. Catal. Today 2006, 117, 564–568.
  • 6. Parinyaswan, A.; Pongstabodee, S.; Luengnaruemitchai, A. Int. J. Hydrogen Energ. 2006, 31, 1942–1949.
  • 7. Kaya, S.; Uner, D. Turk. J. Chem. 2008, 32, 645-652.
  • 8. Roldan, R. Beale, A. M.; Sanchez-Sanchez, M.; Romero-Salguero, F. J.; Jimenez-Sanchidrian, C.; Gomez, J. P.;Sankar, G. J. Catal. 2008, 254, 12–26.
  • 9. Micheaud, C.; Marecot, P.; Guerin, M.; Barbier J. Appl. Catal. A-Gen. 1998, 171, 229–239.
  • 10. Wu, X.; Gerstein, B. C.; King, T. S. J. Catal. 1992, 135, 68–80.
  • 11. Uner, D. O.; Pruski, M.; King, T. S. J. Catal. 1995, 156, 60–64.
  • 12. Uner, D.; Tapan, N. A.; Ozen, I.; Uner, M. App. Cat. A.: General, 2003, 251, 225–234.
  • 13. Donnelly, R.G.; King, T.S. Surf. Sci. 1978, 74, 89–108.
  • 14. King, T.S.; Donnelly, R.G. Surf. Sci. 1984, 141, 417–454.
  • 15. King, T.S.; Strohl, J. K. J. Catal. 1989, 116, 540–555.
  • 16. King, T.S. in Surface Segregation and Related Phenomena,Dowben, P. A.; Miller, A. eds.; CRC Press, Boca Raton, FL, 1990.
  • 17. King, T.S.; Strohl, J. K. J. Catal. 1989, 118, 53–67.
  • 18. Darby, J. B.; Myles, K. M. Metal. Trans. 1972, 3, 653–653.
  • 19. Campbell, C. T.; Starr, D. E. J. Am. Chem. Soc. 2002, 124, 9212–9218.
  • 20. Rousset, J. L. ; Bertolini, J. C. ; Miegge, P. Phys. Rev. B 1996, 53, 4947–4957.
  • 21. Lide, D. R. Handbook of Chemistry and Physics, CRC Press, New York, 2003.
  • 22. Løvvik, O.M.; Olsen, R.A. J. Alloy Compd. 2002, 330, 332–337.
  • 23. Metropolis, N.; Rosenbluth, A.W.; Rosenbluth. M. N.; Teller, A. H.; Teller, E. J. Chem. Phys. 1953, 21, 1087–1092.
  • 24. van den Oetelaar, L. C. A.; Nooij, O. W.; Oerlemans, S.; Denier van der Gon, A. W.; Brongersma, H. H.; Lefferts, L.; Roosenbrand, A. G.; van Veen, J. A. R. J. Phys. Chem. B 1998, 102, 3445–3455.
  • 25. Hansen, P. L.; Molenbroek, A. M.; Ruban, A. V. J. Phys. Chem. B 1997, 101, 1861-1868.
  • 26. Cheng, D.; Huang, S.; Wang, W. Chemical Physics 2006, 330, 423–430.
  • 27. Zafiris, G.S.; Gorte, R.J. J. Catal. 1993, 140, 418–423.
  • 28. Gracia, F.J.; Bollmann, L.; Wolf, E.E.; Miller, J.T.; Kropf, A.J. J. Catal. 2003, 220, 382–391.
  • 29. Atalik, B.; Uner, D. J. Catal. 2006, 241, 268–275.
  • 30. Norskov, J.K. Bligaard, T. Logadottir, A. Bahn, S. Hansen, L.B. Bollinger, M. Bengaard, H. Hammer, B. Slijivancanin, Z. Mavrikakis, M. Xu, Y. Dahl, S. Jakobsen, C. J. H. J. Catal. 2002, 209, 275–278.
  • 31. Uner, D.; Uner, M. Thermochim. Acta 2005, 434, 107–112.
  • 32. Lewis, H.D.; Burnett, D.J.; Gabelnick, A.M.; Fischer, D.A.; Gland, J.L. J.Phys.Chem. B. 2005, 109, 21847–21857.
Turkish Journal of Chemistry-Cover
  • ISSN: 1300-0527
  • Yayın Aralığı: Yılda 6 Sayı
  • Yayıncı: TÜBİTAK
Sayıdaki Diğer Makaleler

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