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Directional electron transfer in ZnIn₂S₄/Mo₂TiC₂-Ru for efficient photocatalytic hydrogen evolution.

Created on 04 Aug 2026

Authors

Qing Xi, Huimin Yan, Fangxia Xie, Rui Li, Jianxin Liu, Caimei Fan, Zhixin Jin, Hongwei Wang

Published in

Journal of colloid and interface science. Volume 724. Issue Pt 3. Pages 141283. Aug 01, 2026. Epub Aug 01, 2026.

Abstract

The photocatalytic hydrogen evolution (PHE) rate on ZnIn2S4 is severely limited by the low utilization of photogenerated electrons and the sluggish reaction kinetics. Driving the directional transfer of photogenerated electrons to the target site is crucial for enhancing the electron utilization efficiency and the PHE performance. Herein, this study rationally designed a ternary composite photocatalyst ZnIn2S4/Mo2TiC2-RuC, in which Mo2TiC2-RuC serves as an electron acceptor and efficient active site. The in-situ KPFM and Mott-Schottky results indicate that the establishment of interfacial electron transport channel accelerates the transfer of photogenerated electrons from ZnIn2S4 to Mo2TiC2. Density functional theory (DFT) calculations verify the strong metal-support interaction (EMSI) and interfacial electron delocalization of Mo2TiC2-RuC, which synergistically optimize the water dissociation at Ru nanocluster and the hydrogen evolution desorption at the Mo2TiC2 terminal, promoting the efficient utilization of photogenerated electrons. Therefore, ZnIn2S4/Mo2TiC2-RuC achieved a PHE rate of 6.15 mmol·g-1·h-1 under visible light, and demonstrated excellent potential for PHE application under natural light. This study provides a new paradigm for integrating electron transfer dynamics with active site engineering to improve the utilization efficiency of photogenerated electrons in the photocatalytic hydrogen evolution process.

PMID:
42546389
Bibliographic data and abstract were imported from PubMed on 04 Aug 2026.

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