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January 23, 2026Inorganic Chemistry0 citations

Exploiting Weak Interlayer-Coupling ReS 2 as Electron Sinks in In 2 S 3 Heterojunctions for Photocatalytic Hydrogen Production

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YCYuxiao ChenFLFei LiuLYLei Yang

Key Points

  • The research aims to enhance photocatalytic hydrogen production by addressing electron-hole recombination in In2S3.
  • Constructed heterojunctions with ReS2 to utilize its weak interlayer coupling capabilities.
  • Evaluated electron extraction efficiency under visible light irradiation.
  • Compared hydrogen evolution rates of In2S3 and In2S3/ReS2 heterojunctions.
  • Observed nearly 300% increase in hydrogen evolution rate for In2S3/ReS2 compared to pristine In2S3.
  • Weak coupling facilitated ultrafast electron extraction and improved carrier lifetimes.

Abstract

Indium sulfide (In2S3) is a promising photocatalyst but is hampered by rapid electron-hole recombination and limited charge carrier mobility, restricting its hydrogen evolution performance. Constructing heterojunctions with 2D sulfides is an effective strategy to improve carrier separation as their inherent in-plane carrier transport facilitates fast electron migration. However, conventional 2D sulfides often exhibit relatively strong interlayer coupling, which still leads to undesired interlayer charge hopping and consequently limits the efficiency of interfacial electron extraction from In2S3. Herein, we introduce weak-interlayer-coupling Rhenium disulfide (ReS2) as a robust electron sink to overcome this limitation. The weak interlayer interactions of ReS2 enable ultrafast electron extraction and spatial separation, thereby suppressing recombination and extending carrier lifetimes. Consequently, the In2S3/ReS2 heterojunction achieves a hydrogen evolution rate nearly 300% higher than that of pristine In2S3 under visible light irradiation. This study highlights the potential of weak-coupling 2D materials for overcoming charge-separation bottlenecks in photocatalytic heterostructures.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69730f59c8125b09b0d1f190https://doi.org/10.1021/acs.inorgchem.5c05715
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