Improving benzene catalytic oxidation on Ag/Co3O4 by regulating the chemical states of Co and Ag

J Environ Sci (China). 2024 Sep:143:201-212. doi: 10.1016/j.jes.2023.08.019. Epub 2023 Aug 24.

Abstract

Silver (9 wt.%) was loaded on Co3O4-nanofiber using reduction and impregnation methods, respectively. Due to the stronger electronegativity of silver, the ratios of surface Co3+/Co2+ on Ag/Co3O4 were higher than on Co3O4, which further led to more adsorbed oxygen species as a result of the charge compensation. Moreover, the introducing of silver also obviously improved the reducibility of Co3O4. Hence the Ag/Co3O4 showed better catalytic performance than Co3O4 in benzene oxidation. Compared with the Ag/Co3O4 synthesized via impregnation method, the one prepared using reduction method (named as AgCo-R) exhibited higher contents of surface Co3+ and adsorbed oxygen species, stronger reducibility, as well as more active surface lattice oxygen species. Consequently, AgCo-R showed lowest T90 value of 183°C, admirable catalytic stability, largest normalized reaction rate of 1.36 × 10-4 mol/(h·m2) (150°C), and lowest apparent activation energy (Ea) of 63.2 kJ/mol. The analyzing of in-situ DRIFTS indicated benzene molecules were successively oxidized to phenol, o-benzoquinone, small molecular intermediates, and finally to CO2 and water on the surface of AgCo-R. At last, potential reaction pathways including five detailed steps were proposed.

Keywords: Benzene oxidation; Co(3)O(4)-supported Ag catalyst, VOCs; Reaction mechanism; Reduction method.

MeSH terms

  • Air Pollutants / chemistry
  • Benzene* / chemistry
  • Catalysis
  • Cobalt* / chemistry
  • Models, Chemical
  • Oxidation-Reduction*
  • Oxides* / chemistry
  • Silver* / chemistry

Substances

  • Benzene
  • Cobalt
  • Silver
  • cobalt oxide
  • Oxides
  • Air Pollutants