• Title of article

    Oxidation of H2S to elemental sulfur over alumina-based nanocatalysts: Synthesis and physiochemical evaluations

  • Author/Authors

    Rezaee، Mohammad نويسنده MS degrees in Chemical Engineering , , Kazemeini، Mohammad نويسنده , , Fattahi، Moslem نويسنده PhD degrees ,

  • Issue Information
    دوفصلنامه با شماره پیاپی 0 سال 2016
  • Pages
    15
  • From page
    1160
  • To page
    1174
  • Abstract
    In this paper, oxidation of H2S into elemental sulfur over synthesized aluminabased nanocatalysts was physiochemically investigated and the results were compared with a commercial Claus catalyst. The wet chemical, co-precipitation, and spray pyrolysis techniques were employed to synthesize several alumina nanostructures. Then, the SEM, XRD, and ASAP analysis methods were utilized to characterize in order to choose the best nanocatalyst. The sulfur and H2S contents were determined through the standard UOP techniques. Amongst the synthesized materials, Al2O3-supported sodium oxide prepared through the wet chemical, and Al2O3 nanocatalysts via spray pyrolysis methods were the most active catalysts for the purpose at hand. In addition, the TiO2 nanostructure and a hybrid of nano alumina support (made via the wet chemical method), decorated on the carbon nanotube, were prepared for this goal. Ultimately, the best chemically characterized nanocatalyst was subjected to evaluations in a xed bed reactor while e ects of temperature, metal loading, and GHSV were understudied. It was observed that the alumina nanoparticles prepared through the wet chemical and spray pyrolysis methods led H2S into elemental sulfur in a reproducible manner with 97 and 98% conversions, respectively. Both of these methods were more desirable than utilizing the commercial catalysts (i.e. CR-3S and CRS-31) providing nearly 96% conversion.
  • Journal title
    Scientia Iranica(Transactions C: chemistry, chemical engineering)
  • Serial Year
    2016
  • Journal title
    Scientia Iranica(Transactions C: chemistry, chemical engineering)
  • Record number

    2403250