4.8 Article

Three-dimensionally ordered macroporous Au/CeO2-Co3O4 catalysts with nanoporous walls for enhanced catalytic oxidation of formaldehyde

Journal

APPLIED CATALYSIS B-ENVIRONMENTAL
Volume 127, Issue -, Pages 47-58

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.apcatb.2012.08.005

Keywords

Three-dimensionally ordered macroporous; Au/CeO2-Co3O4 catalysts; HCHO catalytic oxidation; Synergistic effect; Catalytic mechanism

Funding

  1. National High Technology Research and Development Program (863 program) [2010AA03A407]
  2. National Natural Science Foundation of China [20961005]
  3. Key project of Inner Mongolia National Natural Science Foundation [2010Zd03]
  4. Program for New Century Excellent Talents in University [NCET-10-0907]
  5. Science and Technology Innovation Team of Inner Mongolia University on Research of Micron and Nanometer Magnetic Functional Material [10013-12110605]

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Three-dimensionally ordered macroporous (3DOM) Au/CeO2-Co3O4 catalysts were created via a precursor thermal decomposition-assisted colloidal crystal templating method. The 3DOM Au/CeO2-Co3O4 catalysts possessed well-defined 3DOM structures with adjustable pore sizes, and their compositions, phase structures, and surface elemental valence states can be well controlled by solely adjusting the Ce/Co molar ratio. Moreover, the nanoporous walls with pore sizes around similar to 3-4 nm were created in 3DOM Au/CeO2-Co3O4 catalysts through the thermal decomposition of Co and Ce oxalate precursors during the preparation. The 3DOM Au/CeO2-Co3O4 catalysts exhibited superior catalytic activity for formaldehyde (HCHO) catalytic oxidation into CO2 and H2O with a 100% conversion rate at temperatures as low as similar to 39 degrees C. A catalytic mechanism of the synergistic effect between CeO2 and Co3O4 supports, which greatly accelerates the surface active oxygen migration and activates the Au species, was proposed for explaining the enhanced HCHO catalytic oxidation over 3DOM Au/CeO2-Co3O4 catalysts. The well-controlled method for creation of 3DOM Au/CeO2-Co3O4 catalysts with nanoporous walls could be adopted for generation of other catalytic materials with mixed macroporous and mesoporous structures. The superior catalytic activity of 300M Au/CeO2-Co3O4 catalysts makes them potentially applicable to indoor HCHO decontamination and industrial catalysis. (C) 2012 Elsevier B.V. All rights reserved.

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