Article, 2024

Promoting photocatalytic hydrogen evolution by modulating the electron-transfer in an ultrafast timescale through Mo-S configuration

Journal of Materials Science and Technology, ISSN 1005-0302, Volume 193, Pages 73-80, 10.1016/j.jmst.2024.01.021

Contributors

Li Y. [1] Yu S. [1] Cao Y. 0000-0003-4073-6162 [1] Huang Y. [1] Wang Q. [1] Duan Y. [1] Li L. [2] Zheng K. 0000-0002-7236-1070 [3] [4] Zhou Y. 0000-0001-9995-0652 (Corresponding author) [1]

Affiliations

  1. [1] Southwest Petroleum University
  2. [NORA names: China; Asia, East];
  3. [2] Shanghai Advanced Research Institute
  4. [NORA names: China; Asia, East];
  5. [3] Lund University
  6. [NORA names: Sweden; Europe, EU; Nordic; OECD];
  7. [4] Technical University of Denmark
  8. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

Maximizing ultrafast electron-transfer kinetics in semiconductor is pivotal but challenging for high-efficiency solar-to-energy during the photocatalytic reaction process due to the intrinsic property of photocatalysts with low surface electron density. Herein, a model photocatalyst CdS@Mo is synthesized through a typical hydrothermal method for modulating the ultrafast electron-transfer to enhance the surface electron density. X-ray absorption fine spectra (XAFS) reveal that Mo is coordinated with S atoms to form a Mo-S configuration which is different from common MoS and Mo foil structures. Based on the femtosecond transient absorption spectra (fs-TAS), it is found that the formation of Mo-S configuration contributes to the fast decay of CdS signal and Mo-S signal reactivation, illustrating the ultrafast electron-transfer (∼2.2 ps) from CdS to Mo-S configuration, which achieves the enhanced electron density of photocatalyst surface. Finally, a holistic photocatalytic performance evaluation discloses that the growing of Mo-S configuration obviously improves the photocatalytic hydrogen evolution (PHE) efficiency of CdS from 28.5 to 47.5 mmol g h with a solar-to-hydrogen (STH) efficiency of 0.10 % which is seldomly discussed in the system containing sacrificial agents. This work opens a new path to modulate the surface electron density by tuning the ultrafast electron-transfer for enhancing reaction efficiency in electron-density-dependent systems.

Keywords

CdS, Electron-transfer, Mo-S configuration, Photocatalytic hydrogen evolution

Funders

  • National Science Fund for Distinguished Young Scholars
  • Southwest Petroleum University
  • National Natural Science Foundation of China

Data Provider: Elsevier