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February 2, 2026Small0 citations

Hole Storage Layers in Photoelectrodes for Mitigating Recombination and Driving Stable PEC Water Splitting

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JWJingkun WangCMChangtu MaBLBowen Li

Key Points

  • The aim is to evaluate the role of hole storage layers in enhancing the efficiency of photoelectrochemical water splitting.
  • Overview of hole storage layers and their mechanisms
  • Comparison between hole storage layers and conventional hole transport layers
  • Summary of recent advances in various photoanodes and photocathodes
  • Discussion on functions of hole storage layers
  • HSLs effectively reduce carrier recombination and enhance hole utilization
  • Temporary hole storage improves the kinetics of oxidation/reduction reactions
  • Protection against photocorrosion increases the stability of semiconductors

Abstract

ABSTRACT Photoelectrochemical (PEC) water splitting has garnered increasing attention as a viable and eco‐friendly approach for converting solar energy into hydrogen fuel. However, the practical efficiency is limited by rapid carrier recombination and inefficient hole utilization. Unlike previous reviews on hole transport layers (HTLs) or general interface engineering, this review provides a systematic overview of the applications of hole storage layers (HSLs) in PEC water splitting. The core principles and key performance metrics of PEC water splitting are first outlined, and the fundamental differences between HSLs (store and release mechanism) and conventional HTLs (continuous charge transport) are clarified. Subsequently, recent advances in HSLs for mainstream photoanodes (e.g., Ta 3 N 5 , BiVO 4 , Fe 2 O 3 ) and emerging photocathodes (e.g., Cu 2 O, a‐Si, Sb 2 Se 3 ) are summarized. The main functions of the HSL strategy are discussed: such as storing holes temporarily to inhibit recombination, balancing the oxidation/reduction kinetics of water, and protecting the semiconductor from photocorrosion. Finally, it summarizes and outlines the strategies for the future development of HSL. It is hoped that this review will provide useful guidance for designing efficient and stable photoelectrodes for PEC water splitting, addressing carrier recombination and hole utilization to accelerate large‐scale solar‐to‐hydrogen conversion.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6980ff19c1c9540dea811d3dhttps://doi.org/10.1002/smll.202512652
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