4.6 Article

Cerium-zirconium mixed oxide synthesized by sol-gel method and its effect on the oxygen vacancy and specific surface area

期刊

JOURNAL OF SOLID STATE CHEMISTRY
卷 307, 期 -, 页码 -

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jssc.2021.122752

关键词

Cerium-zirconium mixed oxide; Sol-gel synthesis; Cetyltrimethylammonium bromide (CTAB); Effect of oxygen vacancies on oxidation activity; Diesel soot oxidation

资金

  1. CNPq [307845/2019-2, 307091/20180]
  2. CAPES [001]
  3. DPI/IQ/UnB
  4. MCTIC/CNPq [480165/2013-0, 484384/2012-0]
  5. CAPES
  6. FAPDF [0193.001799/2017, 0193.001348/2016]
  7. FINATEC
  8. FINEP/CTPetro/CTInfra
  9. Petrobras

向作者/读者索取更多资源

In this study, cerium-zirconium mixed oxides were synthesized using the sol-gel methodology with CTAB for controlling the specific surface area and pore volume. The materials synthesized with CTAB showed higher oxygen vacancy compared to those prepared by conventional sol-gel process. The catalytic test suggested that the oxygen vacancy parameter is more important than the specific surface area itself.
In this study, cerium-zirconium mixed oxides were prepared using the sol-gel methodology with cetyltrimethylammonium bromide (CTAB) for tuning the specific surface area and pore volume. The composition of Ce0.8Zr0.2O2 (CZ) was selected as being one of the most active for soot oxidation, which is a concern as an environmental pollutant. The structural and morphological properties were investigated using EDXRF, XRD, SEM/ EDS, Raman and N-2 physisorption at low temperature. The catalytic test was evaluated by temperature programmed oxidation coupled with mass spectrometry (TPO/MS). Any variation in the CTAB concentration during synthesis changed the particle size and surface area, indicating that the particle formation follows a mechanism in which the CTAB acts as capping agent. Additionally, the material synthesized with CTAB was found to have higher oxygen vacancy compared to the materials from the conventional sol-gel process. The catalytic test suggested that the material with the smallest surface area had the lowest temperature of oxidation (T-50% 1/4 400 degrees C), which demonstrates that the oxygen vacancy parameter is essentially more important than the specific surface area itself.

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