Acta Phys. -Chim. Sin. ›› 2026, Vol. 42 ›› Issue (9): 100332.doi: 10.1016/j.actphy.2026.100332

• ARTICLE • Previous Articles     Next Articles

Oxygen vacancy-mediated 2D/2D Bi2MoO6/Bi2O2S S-scheme heterojunctions for efficient CO2 photoreduction

Hongfei Yin1,3,*(), Mengling Hong1, Jinyang Zhang2, Wentao Wang2,*(), Wei Chen4, Guozhi Wu1,*()   

  1. 1 School of Materials and Environmental Engineering, Chizhou University, Chizhou 247000, Anhui Province, China
    2 Guizhou Provincial Key Laboratory of Critical Materials and Devices for Solid-State Batteries, Guizhou Provincial Key Laboratory of Computational Nanomaterial Science, Guizhou Education University, Guiyang 550018, Guizhou Province, China
    3 School of Physics and Physical Engineering, Qufu Normal University, Qufu 273165, Shandong Province, China
    4 School of Pharmaceutical and Chemical Engineering, Taizhou University, Taizhou 318000, Zhejiang Province, China
  • Received:2026-04-15 Revised:2026-05-26 Accepted:2026-05-27 Published:2026-07-03
  • Contact: Email: yinhf@czu.edu.cn (Hongfei Yin)wtwang@gznc.edu.cn (Wentao Wang)allen_0688@163.com (Guozhi Wu)

Abstract:

The efficient reduction of CO2 through photocatalysis to produce value-added chemicals faces considerable difficulties, particularly in relation to the charge separation and transfer kinetics of photocatalysts, along with the thermodynamics of the CO2 reduction process. Herein, we present a rational design of oxygen vacancy-mediated 2D/2D Bi2MoO6/Bi2O2S S-scheme heterojunctions via an in situ hydrothermal sulfidation strategy, where partial S2− substitution for [MoO4]2− forms a tightly bonded heterointerface and induces oxygen vacancies, as evidenced by X-ray photoelectron spectroscopy (XPS) and electron paramagnetic resonance (EPR) tests. Density functional theory (DFT) calculations reveal that the oxygen vacancy-mediated Bi2MoO6/Bi2O2S S-scheme heterojunction significantly lowers the energy barrier of *COOH formation rate-determining step, which in turn enhances the thermodynamics of CO2 photoreduction. Consequently, the Bi2MoO6/Bi2O2S heterojunctions, especially BMOS5, possessed the highest CO yield of 11.01 μmol g−1 h−1, corresponding to 2.82 and 3.40 times the yields of bare BMO and BOS. Based on in situ XPS, band edge determination, and DFT calculations, the S-scheme charge transfer pathway was verified. The findings provide a viable pathway toward developing high-performance S-scheme heterojunctions with tailored defects for solar-driven CO2 reduction.

Key words: S-scheme heterojunctions, CO2 photoreduction, Charge separation and transfer kinetics, Density functional theory