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Textural, structural, and morphological characterizations and catalytic activity of nanosized CeO2–MO x (M=Mg2+, Al3+, Si4+) mixed oxides for CO oxidation

Authors :
Yu, Qiang
Wu, Xiaoxia
Tang, Changjin
Qi, Lei
Liu, Bin
Gao, Fei
Sun, Keqin
Dong, Lin
Chen, Yi
Source :
Journal of Colloid & Interface Science. Feb2011, Vol. 354 Issue 1, p341-352. 12p.
Publication Year :
2011

Abstract

Abstract: The present work focuses on the combination of ceria with another oxide of different ionic valences from period 3 (Mg2+, Al3+, and Si4+) using coprecipitation method, followed by calcination at 450 and 750°C, respectively. The textural, structural, morphological and redox properties of nanosized ceria–magnesia, ceria–alumina and ceria–silica mixed oxides have been investigated by means of N2 physisorption, XRD, Raman, HRTEM, DRS, FT-IR, and H2-TPR technologies. XRD results of these mixed oxides reveal that only nanocrystalline ceria (ca. 3–6nm for the 450°C calcined samples) could be observed. The grain size of ceria increases with the increasing calcination temperature from 450 to 750°C due to sintering effect. The highest specific surface area is obtained at CeO2–Al2O3 mixed oxides when calcination temperature reaches 750°C. Raman spectra display the cubic fluorite structure of ceria and the existence of oxygen vacancies, and displacement of oxygen ions from their normal lattice positions in the ceria-based mixed oxides. DRS measurements confirm that the smaller the grain size of the ceria, the higher indirect band gap energy. H2-TPR results suggest that the reductions of surface and bulk oxygen of ceria were predominant at low and high calcination temperature, respectively. Finally, CO oxidation were performed over these ceria-based mixed oxides, and the combination of CeO2–Al2O3 exhibited highest activity irrespective of calcination temperature, which may due to excellent textural/structural properties, good homogeneity, and redox abilities. [Copyright &y& Elsevier]

Details

Language :
English
ISSN :
00219797
Volume :
354
Issue :
1
Database :
Academic Search Index
Journal :
Journal of Colloid & Interface Science
Publication Type :
Academic Journal
Accession number :
56489384
Full Text :
https://doi.org/10.1016/j.jcis.2010.10.043