Charge Transfer Mediators in Photoelectrochemical Water Splitting: From Interfacial Regulation to Rational Design

Photoelectrochemical (PEC) water splitting is a promising route for solar-to-chemical energy conversion and storage, yet its efficiency remains limited by interfacial charge recombination, inefficient carrier extraction, and sluggish reaction kinetics. Charge transfer mediators have emerged as critical interfacial components bridging photoelectrodes, cocatalysts, and conductive substrates, enabling directional carrier transport, suppressed recombination, and enhanced catalytic activity. However, their roles, design principles, and mechanisms in PEC systems remain insufficiently understood. This review systematically defines charge transfer mediators in PEC water splitting, clarifies their multifunctional roles in charge transfer, charge storage, and interfacial protection, and summarizes representative material platforms, including carbon-based materials, MXenes, metal oxides, molecular materials, nonmetal nitrides, and other emerging mediators. Particular emphasis is placed on the relationship between mediator structures, interfacial configurations, electronic properties, and PEC performance. Advanced characterization techniques and theoretical approaches for elucidating charge transfer pathways and reaction mechanisms are also discussed to establish structure-property-performance correlations. Finally, key challenges and future perspectives are highlighted, positioning charge transfer mediators as an emerging paradigm for constructing efficient, stable, and practical PEC systems.

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Publication Details

Journal
Advanced Materials
Published
2026-10-09
DOI
https://doi.org/10.1002/adma.75313
Primary Topic
Advanced Photocatalysis Techniques
Type
article
Field-Weighted Citation Impact
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Charge Transfer Mediators in Photoelectrochemical Water Splitting: From Interfacial Regulation to Rational Design

Yurou Song, Wenjuan Yan, Jungang Hou, Xin Jin et al.
Advanced Materials
Advanced Photocatalysis Techniques
article

Charge Transfer Mediators in Photoelectrochemical Water Splitting: From Interfacial Regulation to Rational Design

Yurou Song, Wenjuan Yan, Jungang Hou, Xin Jin, Yuye Jiao
article en

Abstract

Photoelectrochemical (PEC) water splitting is a promising route for solar-to-chemical energy conversion and storage, yet its efficiency remains limited by interfacial charge recombination, inefficient carrier extraction, and sluggish reaction kinetics. Charge transfer mediators have emerged as critical interfacial components bridging photoelectrodes, cocatalysts, and conductive substrates, enabling directional carrier transport, suppressed recombination, and enhanced catalytic activity. However, their roles, design principles, and mechanisms in PEC systems remain insufficiently understood. This review systematically defines charge transfer mediators in PEC water splitting, clarifies their multifunctional roles in charge transfer, charge storage, and interfacial protection, and summarizes representative material platforms, including carbon-based materials, MXenes, metal oxides, molecular materials, nonmetal nitrides, and other emerging mediators. Particular emphasis is placed on the relationship between mediator structures, interfacial configurations, electronic properties, and PEC performance. Advanced characterization techniques and theoretical approaches for elucidating charge transfer pathways and reaction mechanisms are also discussed to establish structure-property-performance correlations. Finally, key challenges and future perspectives are highlighted, positioning charge transfer mediators as an emerging paradigm for constructing efficient, stable, and practical PEC systems.

Advanced Materials
Dalian University of Technology (CN), China University of Petroleum, East China (CN), State Key Laboratory of Fine Chemicals
Openalex Percentile: Top 34%
Advanced Photocatalysis Techniques
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