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January 23, 2026Carbon Energy19 citationsOpen Access

Directed Charge Transfer‐Driven Efficient Photocatalytic Hydrogen Production in Dual S‐Scheme WS 2 /Co 9 S 8 /ZnCdS Heterojunction

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SFShuanghe FuHarbin University of Science and TechnologyZCZhi CaiBeihang UniversityHPHaijun PangHarbin University of Science and Technology

Key Points

  • To develop a dual S-scheme heterojunction for efficient photocatalytic hydrogen production from ZnCdS-based materials.
  • Synthesis of a dual S-scheme WS2/Co9S8/ZnCdS heterojunction using polyoxometalates as precursors.
  • Investigation of charge transfer mechanisms through various spectroscopic analyses including XPS and TRPL.
  • Evaluation of hydrogen evolution rates under visible-light irradiation.
  • Achieved a hydrogen evolution rate of 15.66 mmol g−1 h−1 under visible light.
  • Demonstrated improved stability and charge migration efficiency of the dual S-scheme heterojunction.
  • Established tight interfacial coupling between components in the heterojunction.

Abstract

ABSTRACT ZnCdS‐based photocatalysts exhibit great potential for solar‐driven hydrogen (H 2 ) evolution due to their tunable bandgaps and visible‐light absorption. Nevertheless, rapid charge recombination and structural instability hinder their practical implementation. To overcome these challenges, this work proposes a dual S‐scheme heterojunction design strategy utilizing polyoxometalates (POMs) as precursors to precisely control the heterojunction interfacial coupling. A dual S‐scheme WS 2 /Co 9 S 8 /ZnCdS system was synthesized via a precursor‐guided sulfidation process, using K 7 Co 2 W 11 O 40 H 2 ·15H 2 O (Co 2 W 11 ) POM clusters as dual‐source templates. This approach enables the simultaneous achievement of tight interfacial coupling and a simplified single‐interface architecture. The charge transfer mechanism within the heterojunction was systematically investigated through analyses of the Fermi level, band structure, ultrafast timescale femtosecond transient absorption (fs‐TAS), time‐resolved photoluminescence (TRPL), in situ x‐ray photoelectron spectroscopy (XPS), and synchrotron radiation. The dual S‐scheme heterojunction not only expands the light absorption range of ZnCdS but also promotes efficient charge migration and separation. Under visible‐light irradiation ( λ ≥ 420 nm), this dual S‐scheme heterojunction exhibits remarkable stability and achieves a hydrogen evolution rate of up to 15.66 mmol g −1 h −1 , surpassing most reported noble metal‐free ZnCdS‐based photocatalysts. This research provides a robust methodology for developing dual S‐scheme heterojunctions that enhance photocatalytic hydrogen evolution efficiency.

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Cite This Study

Fu et al. (2026) studied this question.

synapsesocial.com/papers/69731005c8125b09b0d1fbd9https://doi.org/10.1002/cey2.70174
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