Mo-cation/O-anion doping strategy for creating vacancy defects and cation multivalency to enhance the hydrogen evolution of ZnS under visible light

Abstract

Abstract: Herein, we designed a stable and photocorrosion-resistant Mo/O co-doping ZnS (labeled as ZnMoOS) catalyst with abundant sulfur vacancy (Vs) defects and bivalent Mo4+/Mo6+ states for effective photocatalytic hydrogen evolution reaction (Photo-HER) under visible light. The Mo/O co-doping reduces band gap of ZnS and extends its visible light absorption range. The hydrazine-driven process adjusts ZnMoOS with appropriate bivalent n(Mo4+)/n(Mo6+) states and creates abundant Vs defects. The Vs defects are active sites to capture water molecules and weaken H-O-H bonds for producing protons and H2 generation. The bivalent n(Mo4+)/n(Mo6+) states act as hosts for photogenerated electrons, facilitating the rapid hopping of photogenerated electrons between Mo4+Mo6+ to transfer for photo-HER, thereby improving photo-HER efficiency. DFT calculations reveal that Mo/O co-doping of ZnMoOS with abundant Vs defects and heterovalent Mo4+/Mo6+ states, significantly facilitates hydrogen desorption and enhances the surface H* generation rate. The ZnMoOS-3 with appropriate Mo/O co-doping and regulation with optimum hydrazine content exhibits an excellent photo-HER rate of 41.6 mmolg1h1 and an AQE of 18.6% at 400 nm, along with good durability and stability. This work provides a strategy of vacancy defects and heterovalent states for designing sulfide catalysts with high photo-HER activity and inhibition of photocorrosion.

Supplementary files

Article information

Article type
Paper
Submitted
17 Mar 2025
Accepted
01 May 2025
First published
01 May 2025

J. Mater. Chem. A, 2025, Accepted Manuscript

Mo-cation/O-anion doping strategy for creating vacancy defects and cation multivalency to enhance the hydrogen evolution of ZnS under visible light

X. Wu, T. L. Wan, B. Yang, D. Kuo, P. Zhang, M. Liu, S. N. Adawara, D. F. Lu, J. Lin and X. Chen, J. Mater. Chem. A, 2025, Accepted Manuscript , DOI: 10.1039/D5TA02176F

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