Chinese Journal of Catalysis ›› 2025, Vol. 79: 231-239.DOI: 10.1016/S1872-2067(25)64843-1

• Articles • Previous Articles    

S-scheme Cd0.8Zn0.2S nanowires/CeO2 nanocubes heterojunction for efficient photocatalytic hydrogen evolution

YuQing Yana, YongHui Wua, Jun Wanga, JinRong Huob, Kai Yanga, KangQiang Lua,*()   

  1. aJiangxi Provincial Key Laboratory of Functional Crystalline Materials Chemistry, School of Chemistry and Chemical Engineering, Jiangxi University of Science and Technology, Ganzhou 341000, Jiangxi, China
    bSchool of Basic Sciences, Xi'an Technological University, Xi'an 710021, Shaanxi, China
  • Received:2025-06-23 Accepted:2025-08-06 Online:2025-12-18 Published:2025-10-27
  • Contact: KangQiang Lu
  • Supported by:
    National Natural Science Foundation of China(22462010);National Natural Science Foundation of China(22366018);Jiangxi Provincial Natural Science Foundation(20252BAC220013);Jiangxi Provincial Natural Science Foundation(20224BAB203018);Jiangxi Provincial Natural Science Foundation(20212BAB213016);Jiangxi Provincial Natural Science Foundation(20232ACB203022);Jiangxi Province “Double Thousand Plan”(jxsq2023102143);Jiangxi Province “Double Thousand Plan”(jxsq2023102142);Jiangxi Province “Double Thousand Plan”(jxsq2023201086);Jiangxi Province “Double Thousand Plan”(jxsq2023102141);Jiangxi Province “Double Thousand Plan”(jxsq2019102053)

Abstract:

Constructing S-scheme heterojunctions preserves the intrinsic redox capabilities of both semiconductors while promoting the separation of photogenerated electrons and holes, making it a promising approach for enhancing the properties of semiconductors. In this study, an S-scheme Cd0.8Zn0.2S-CeO2 (CZS-CeO2) heterojunction was successfully fabricated via the in-situ growth of CZS nanowires on CeO2 nanocubes. The S-scheme charge-transfer mechanism of the CZS-CeO2 composites during photocatalytic reactions was confirmed through in-situ X-ray photoelectron spectroscopy and density functional theory calculations. These results demonstrate that the interfacial electric field (IEF) significantly facilitates charge separation and transport within the heterojunction. Consequently, the CZS-CeO2 composites exhibited excellent photocatalytic hydrogen production performance under simulated sunlight irradiation, surpassing that of blank CZS. Particularly, the optimal photocatalytic hydrogen generation rate for CZS-15%CeO2 reached 58 mmol·g-1·h-1, approximately 8.8 times higher than that of blank CZS. After five consecutive cycles of testing, CZS-15%CeO2 retained a relatively high level of activity. This enhanced stability can be attributed to the fabrication of S-scheme heterojunctions, which effectively suppressed hole-induced photocorrosion of CZS. This investigation provides a beneficial reference for the rational design of S-scheme heterojunction photocatalysts for efficient and stable photocatalytic hydrogen production.

Key words: Photocatalytic hydrogen evolution, CeO2, Cd0.8Zn0.2S, S-scheme heterojunction, Built-in electric field