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ID 69805
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Luo, Haolin Research Center for Combustion and Environment Technology, Shanghai Jiao Tong University
Liu, Zhixi Research Center for Combustion and Environment Technology, Shanghai Jiao Tong University
Lv, Haifeng State Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Material Sciences, and Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), University of Science and Technology of China
Vequizo, Junie Jhon M. Institute of Aqua Regeneration, Shinshu University
Zheng, Mengting College of Chemical and Biological Engineering, Zhejiang University
Han, Feng Research Center for Combustion and Environment Technology, Shanghai Jiao Tong University
Ye, Zhen Research Center for Combustion and Environment Technology, Shanghai Jiao Tong University
Yamakata, Akira Faculty of Natural Science and Technology, Okayama University
Shangguan, Wenfeng Research Center for Combustion and Environment Technology, Shanghai Jiao Tong University
Lee, Adam F. Centre for Catalysis and Clean Energy, School of Environment and Science, Griffith University
Wu, Xiaojun State Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Material Sciences, and Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), University of Science and Technology of China
Kazunari, Domen Institute of Aqua Regeneration, Shinshu University
Lu, Jun College of Chemical and Biological Engineering, Zhejiang University
Jiang, Zhi Research Center for Combustion and Environment Technology, Shanghai Jiao Tong University
Abstract
N-type sulfide semiconductors are promising photocatalysts due to their broad visible-light absorption, facile synthesis and chemical diversity. However, photocorrosion and limited electron transport in one-step excitation and solid-state Z-scheme systems hinder efficient overall water splitting. Liquid-phase Z-schemes offer a viable alternative, but sluggish mediator kinetics and interfacial side reactions impede their construction. Here we report a stable Z-scheme system integrating n-type CdS and BiVO₄ with a [Fe(CN)₆]³⁻/[Fe(CN)₆]⁴⁻ mediator, achieving 10.2% apparent quantum yield at 450 nm with stoichiometric H₂/O₂ evolution. High activity reflects synergies between Pt@CrOx and Co3O4 cocatalysts on CdS, and cobalt-directed facet asymmetry in BiVO₄, resulting in matched kinetics for hydrogen and oxygen evolution in a reversible mediator solution. Stability is dramatically improved through coating CdS and BiVO4 with different oxides to inhibit Fe4[Fe(CN)6]3 precipitation and deactivation by a hitherto unrecognized mechanism. Separate hydrogen and oxygen production is also demonstrated in a two-compartment reactor under visible light and ambient conditions. This work unlocks the long-sought potential of n-type sulfides for efficient, durable and safe solar-driven hydrogen production.
Published Date
2025-10-02
Publication Title
Nature Communications
Volume
volume16
Issue
issue1
Publisher
Springer Science and Business Media LLC
Start Page
8786
ISSN
2041-1723
Content Type
Journal Article
language
English
OAI-PMH Set
岡山大学
Copyright Holders
© The Author(s)
File Version
publisher
PubMed ID
DOI
Web of Science KeyUT
Related Url
isVersionOf https://doi.org/10.1038/s41467-025-63840-1
License
http://creativecommons.org/licenses/by-nc-nd/4.0/
Citation
Luo, H., Liu, Z., Lv, H. et al. Efficient and stable n-type sulfide overall water splitting with separated hydrogen production. Nat Commun 16, 8786 (2025). https://doi.org/10.1038/s41467-025-63840-1