• Title of article

    The structures of VOx/MOx and alkali-VOx/MOx catalysts and their catalytic performances for soot combustion

  • Author/Authors

    Jian Liu، نويسنده , , Zhen Zhao، نويسنده , , Chunming Xu، نويسنده , , Aijun Duan، نويسنده , , Ling Zhu، نويسنده , , Xuezhong Wang، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2006
  • Pages
    8
  • From page
    315
  • To page
    322
  • Abstract
    Vanadium oxides supported on γ-Al2O3, SiO2, TiO2, and ZrO2 were studied on their molecular structures and reactive performances for soot combustion. To investigate the effect of different alkali metals on the structures and reactivities of supported-vanadium oxide catalysts, they were doped into the V4/TiO2 catalyst which had the best intrinsic activity for soot combustion in the selected supported vanadium oxide catalysts. The experimental results demonstrated that the catalytic properties of these catalysts depended on the vanadium loading amount, support nature, and the presence or the absence of alkali metals. The spectroscopic analysis (FT-IR and UV–vis) and H2-TPR results revealed that the higher activity of alkali-promoted vanadium oxide catalysts could be related to the ability of alkali metal promoting the redox cycle of the active vanadyl species. TG results showed that adding alkali to Vm/TiO2 catalyst was beneficial to lowering their melting points. Low melting points could ensure the good surface atom migration ability, which would improve the contact between the catalyst and soot. Due to the alkali metal components promoting the redox ability and the mobility of the catalysts, alkali-modified vanadium oxide catalysts could remarkably improve their catalytic activities for soot combustion. The catalytic activity order for soot combustion followed Li > Na > K > Rb > Cs in the catalyst system of alkali-V4/TiO2, and the reason why it followed this sequence was discussed.
  • Keywords
    Supported vanadium oxide , Soot , COMBUSTION , alkali metal , Catalyst
  • Journal title
    CATALYSIS TODAY
  • Serial Year
    2006
  • Journal title
    CATALYSIS TODAY
  • Record number

    1235483