4.6 Article

Microwave-Assisted Photocatalytic Degradation of Organic Pollutants via CNTs/TiO2

Journal

CATALYSTS
Volume 12, Issue 9, Pages -

Publisher

MDPI
DOI: 10.3390/catal12090940

Keywords

photocatalysis; microwave; degradation; xCNTs; TiO2

Funding

  1. National Key Research and Development Program of China [2020YFA0211004]
  2. National Natural Science Foundation of China [22176128, 21876114]
  3. Shanghai Government [21XD1422800, 19DZ1205102, 19160712900]
  4. Chinese Education Ministry Key Laboratory and International Joint Laboratory on Resource Chemistry
  5. Shanghai Engineering Research Center of Green Energy Chemical Engineering [18DZ2254200]
  6. Shanghai Frontiers Science Center of Biomimetic Catalysis
  7. Shanghai Eastern Scholar Program

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This study investigates the promotion effect of microwave-absorbing photocatalysts on the photocatalytic oxidation process. The results show that the thermal effect of the microwave field enhances the separation efficiency of photogenerated electrons and holes, while the athermal effect improves the light absorption rate of the catalyst and promotes the generation of reactive oxygen radicals. These findings provide a theoretical foundation for practical applications.
Introducing microwave fields into photocatalytic technology is a promising strategy to suppress the recombination of photogenerated charge carriers. Here, a series of microwave-absorbing photocatalysts, xCNTs/TiO2, were prepared by combining titanium dioxide (TiO2) with carbon nanotubes (CNTs) using a typical alcoholic thermal method to study the promotion of microwave-generated thermal and athermal effects on the photocatalytic oxidation process. As good carriers that are capable of absorbing microwaves and conducting electrons, CNTs can form hot spots and defects under the action of the thermal effect from microwaves to capture electrons generated on the surface of TiO2 and enhance the separation efficiency of photogenerated electrons (e(-)) and holes (h(+)). Excluding the influence of the reaction temperature, the athermal effect of the microwave field had a polarizing effect on the catalyst, which improved the light absorption rate of the catalyst. Moreover, microwave radiation also promoted the activation of oxygen molecules and hydroxyl groups on the catalyst surface to generate more reactive oxygen radicals. According to the mechanism analysis, the microwave effect significantly improved the photocatalytic advanced oxidation process, which lays a solid theoretical foundation for practical application.

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