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February 19, 2026Chemical Science2 citationsOpen Access

Active control of forward/backward charge transfer in Z-scheme water splitting: manipulating electrostatic affinity/repulsion between photocatalyst surface and electron mediator

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RIRen ItagakiANAkinobu NakadaHSHajime Suzuki

Key Points

  • This research aims to explore how manipulating electrostatic interactions influences charge transfer in Z-scheme water splitting systems.
  • Examined the charge transfer process in Z-scheme systems using semiconductor photocatalysts.
  • Manipulated electrostatic interactions between photocatalyst surfaces and electron mediators.
  • Analyzed backward electron transfer rates under various conditions.
  • Enhanced control over backward electron transfer was achieved through electrostatic manipulation.
  • This control improved the overall efficiency of solar hydrogen production significantly.
  • Findings suggest that optimizing interaction between components can lead to better performance in water splitting.

Abstract

Z-scheme water splitting using semiconductor photocatalysts is a promising strategy for achieving sustainable solar hydrogen production. However, in Z-scheme systems, competition for backward electron transfer, which exerts a substantial influence...

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Cite This Study

Itagaki et al. (2026) studied this question.

synapsesocial.com/papers/6996a788ecb39a600b3ed42bhttps://doi.org/10.1039/d5sc10049f
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