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Interfacial Metal Nanocluster Conduits Direct Charge Transfer for Record Unassisted Solar Water Splitting

  • Yurou Song (Co-first Author)
  • , Yuye Jiao (Co-first Author)
  • , Xin Liu (Co-first Author)
  • , Jinbo Liu
  • , Dingfeng Jin
  • , Wanying Guo
  • , Siyu Jiao
  • , Shijie Lu
  • , Guanghao Chen
  • , Biao Yang
  • , Licheng Sun
  • , Jungang Hou*
  • , Bin Liu*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Photoelectrochemical (PEC) water splitting offers one of the most promising solutions for sustainable solar-to-chemical fuel conversion. However, sluggish charge migration across the photoelectrode interface fundamentally limits the PEC efficiency. Herein, we design and engineer an atomic-scale interfacial charge conduit by inserting metal nanoclusters between the cocatalyst and semiconductor. The distinct work-function differences among the cocatalyst, metal nanoclusters, and semiconductor induce interfacial band bending, enabling the selective, directional transport of photogenerated carriers from the semiconductor to the cocatalyst. Particularly, bismuth (Bi) nanoclusters synthesized through a universal laser-induced in situ growth strategy on 29 distinct bismuth-based semiconductors induce the formation of metal/semiconductor Schottky junctions and directionally steer electron migration into the semiconductor conduction band while effectively suppressing electron–hole recombination. Benefiting from the Bi nanoclusters and CoFe cocatalyst, the large-area (3 × 3 cm2) earth-abundant CoFe/Bi/BiVO4 photoanode achieves a photocurrent of 26 mA at 1.1 V versus RHE, maintaining stable performance for 600 h. For practical application, an all-oxide-semiconductor tandem PEC device combining a CoFe/Bi/BiVO4 photoanode and a Pt/TiO2/Ga2O3/Cu2O/CuO photocathode records an unassisted 4.8% solar-to-hydrogen conversion efficiency under AM 1.5G light illumination for 70 h. This work demonstrates the atomic-scale engineering of interfacial charge conduits for high-efficiency solar energy conversion. © 2026 American Chemical Society.
Original languageEnglish
Pages (from-to)12235-12244
Number of pages10
JournalJournal of the American Chemical Society
Volume148
Issue number11
Online published14 Mar 2026
DOIs
Publication statusPublished - 25 Mar 2026

Funding

This work was supported by the National Key R&D Program of China (2023YFA1507101), National Natural Science Foundation of China (Nos. 22525201, 22372021, 224B2202, 225B2202), the Liaoning Binhai Laboratory (LBLD-2025-05), the Fundamental Research Funds for the Central Universities (Nos. DUT22LAB602, DUT24BK061, DUTZD25231, DUT25Z2779, DUT25Z3208, DUT25Z2734), Liaoning Joint Project for Technology Research and Development (2024JH2/102600047), the City University of Hong Kong Startup fund (9020003), ITF-RTH-Global STEM Professorship (9446006), and JC STEM lab of Advanced CO2 Upcycling (9228005).

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

RGC Funding Information

  • RGC-funded

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