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Construction of high-efficiency CoS@Nb2O5 heterojunctions accelerating charge transfer for boosting photocatalytic hydrogen evolution

  • Xin Ren
  • , Jianyou Shi
  • , Ruihuan Duan
  • , Jun Di
  • , Chao Xue
  • , Xiao Luo
  • , Qing Liu
  • , Mengyang Xia
  • , Bo Lin
  • , Wu Tang
  • University of Electronic Science and Technology of China
  • Xi'an Jiaotong University
  • Nanyang Technological University
  • Zhengzhou University

Research output: Contribution to journalArticlepeer-review

39 Scopus citations

Abstract

The random movement and easy recombination of photoinduced charges lead to a low conversion efficiency for photocatalytic hydrogen evolution. The cocatalyst design is a promising route to address such problem through introducing an appropriate cocatalyst on the semiconductor photocatalysts to construct the high-efficiency heterojunctions. Herein, novel CoS/Nb2O5 heterojunctions were constructed via in-situ loading CoS cocatalyst on the surface of Nb2O5 nanosheets. Through the femtosecond-resolved transient absorption spectroscopy, the average lifetime of charge carriers for 10 wt% CoS/Nb2O5 (159.6 ps) is drastically shortened by contrast with that of Nb2O5 (5531.9 ps), strongly suggesting the rapid charge transfer from Nb2O5 to CoS. The significantly improved charge-transfer capacity contributes to a high photocatalytic hydrogen evolution rate of 355 µmol/h, up to 17.5 times compared with pristine Nb2O5. This work would provide a new design platform in the construction of photocatalytic heterojunctions with high charge-transfer efficiency.

Original languageEnglish
Pages (from-to)4700-4704
Number of pages5
JournalChinese Chemical Letters
Volume33
Issue number10
DOIs
StatePublished - Oct 2022

Keywords

  • Charge transfer
  • CoS cocatalyst
  • NbO nanosheets
  • Photocatalytic H evolution
  • Transition metal chalcogenides

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