4.7 Article

Synthesis of branched WO3@W18O49 homojunction with enhanced interfacial charge separation and full-spectrum photocatalytic performance

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 389, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2020.124474

Keywords

Homojunction; Photogenerated charge transfer; Full-spectrum light response; Localized surface plasmon resonance; Degradation pathway; W18O49

Funding

  1. National Natural Science Foundation of China [51579096, 51521006, 51222805, 51909089]
  2. Funds for Innovative Province Construction of Hunan Province [2019RS3012, 2019RS1025]
  3. Key Research and Development Program of Hunan Province of China [2017SK2241]
  4. National Innovative Talent Promotion Program of China [2017RA2088]
  5. National Program for Support of Top-Notch Young Professionals of China

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Interfacial charge separation is a fundamental and crucial process in photoelectric conversion for composite photocatalyst. In this work, the interfacial charge separation performance was investigated on a nonmetallic branched homojunction, which is fabricated through solvothermal growth of W18O49 nanofiber (as branches) onto WO3 microrods (as backbones). The ultrafast transfer of photogenerated electrons from the WO3 backbones to the W18O49 branches across the contact interface was demonstrated by a series of experiments and characterizations. The contrast experiment showed that the WO3@W18O49 homojunction exhibited superior interfacial electron transfer capacity to the BiVO4@W18O49 heterojunction, the calculated interfacial charge separation efficiency of WO3@W18O49 was 51.3%, which was more than twice as that of BiVO4@W18O49 (24.2%). Upon localized surface plasmon resonance excitation by low-energy NIR photons, the full-spectrum light driven photo-degradation for 2,4-DCP was realized. The branched structure favors the enhancement of light scattering and absorbing. Meanwhile, the homojunction structure leads to a low impedance interface and increased electric conductivity. Thus, the WO3@W18O49 exhibited an enhanced photocatalytic performance under both full-spectrum and NIR light irradiation. This work provides a promising approach to design and fabricate novel photocatalysts with full-spectrum response ability and enhanced charge separation.

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