Your browser doesn't support javascript.
loading
Complete Degradation of Gaseous Methanol over Pt/FeOx Catalysts by Normal Temperature Catalytic Ozonation.
Tian, Mingze; Liu, Shejiang; Wang, Lulu; Ding, Hui; Zhao, Dan; Wang, Yongqiang; Cui, Jiahao; Fu, Jianfeng; Shang, Jin; Li, Gang Kevin.
Afiliação
  • Tian M; School of Chemical Engineering & Technology , Tianjin University , Jinnan District, Tianjin 300350 , China.
  • Liu S; School of Environmental Science & Engineering , Tianjin University , Jinnan District, Tianjin 300350 , China.
  • Wang L; School of Environmental Science & Engineering , Tianjin University , Jinnan District, Tianjin 300350 , China.
  • Ding H; School of Environmental Science & Engineering , Tianjin University , Jinnan District, Tianjin 300350 , China.
  • Zhao D; Department of Chemical and Biomolecular Engineering , The University of Melbourne , Melbourne VIC 3010 , Australia.
  • Wang Y; School of Environmental Science & Engineering , Tianjin University , Jinnan District, Tianjin 300350 , China.
  • Cui J; Department of Chemical and Biomolecular Engineering , The University of Melbourne , Melbourne VIC 3010 , Australia.
  • Fu J; School of Chemical Engineering & Technology , Tianjin University , Jinnan District, Tianjin 300350 , China.
  • Shang J; School of Environmental Science & Engineering , Tianjin University , Jinnan District, Tianjin 300350 , China.
  • Li GK; School of Energy and Environment , City University of Hong Kong , Tat Chee Avenue , Kowloon , Hong Kong SAR 999077 , People's Republic of China.
Environ Sci Technol ; 54(3): 1938-1945, 2020 02 04.
Article em En | MEDLINE | ID: mdl-31904227
ABSTRACT
Normal temperature catalytic ozonation (NTCO) is a promising yet challenging method for the removal of volatile organic compounds (VOCs) because of limited activity of the catalysts at ambient temperature. Here, we report a series of Pt/FeOx catalysts prepared by the co-precipitation method for NTCO of gaseous methanol. All samples were found to be active and among them, the Pt/FeOx-400 (calcined at 400 °C) catalyst with a Pt cluster loading of 0.2% exhibited the highest activity, able to completely convert methanol into CO2 and H2O at 30 °C. Extensive experimental research suggested that the superior catalytic activity could be attributed to the highly dispersed Pt clusters and an appropriate molar ratio of Pt0/Pt2+. Furthermore, electron paramagnetic resonance and density functional theory computational studies revealed the mechanism that the Pt/FeOx-400 catalyst could activate O3 and water effectively to produce hydroxyl radicals responsible for the catalytic oxidation of methanol. The findings of this work may foster the development of technologies for normal temperature abatement of VOCs with low energy consumption.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Ozônio / Metanol Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Ozônio / Metanol Idioma: En Ano de publicação: 2020 Tipo de documento: Article