Enhancing photocatalytic activity of tantalum nitride by rational suppression of bulk, interface and surface charge recombination

Mu Xiao, Zhiliang Wang, Bin Luo, Songcan Wang, Lianzhou Wang

Research output: Contribution to journalArticlepeer-review

52 Scopus citations

Abstract

Rational design of photocatalysts is essential to achieve efficient solar energy conversion. For narrow bandgap Ta3N5 photocatalyst, various charge recombination occurring in the bulk, interface and on the surface significantly impairs its activity for solar hydrogen (H2) generation. Herein, a synergistic engineering approach is designed to solve this critical recombination challenge. First, hollow spherical structure of Ta3N5 with Mg doping is prepared to not only reduce the charge migration distance and increase the surface area, but also increase the electron mobility for facilitated charge transfer. Second, an MgO nano-layer covers the surface of hollow Ta3N5 structure to passivate surface defects, thus promoting the interfacial charge transfer between Ta3N5 and co-catalysts. Finally, dual co-catalysts (Pt/CoOx) for redox reactions are loaded onto the hollow Ta3N5 structure to reduce the surface recombination and overcome the sluggish surface reaction. Remarkably, the combination of hollow structure, Mg2+ doping, MgO interfacial layer, and dual co-catalysts effectively improves the charge separation and transfer in Ta3N5 photocatalyst. This newly designed photocatalyst exhibits a considerably improved H2 generation performance of 56.3 μmol h−1 under simulated sunlight, compared to that of reference Pt/Ta3N5 hollow spheres.

Original languageEnglish
Pages (from-to)195-201
Number of pages7
JournalApplied Catalysis B: Environmental
Volume246
DOIs
StatePublished - 5 Jun 2019
Externally publishedYes

Keywords

  • Co-catalyst
  • Doping
  • Hollow structure
  • Surface passivation
  • Tantalum nitride

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