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August 11, 2025Advanced Functional Materials23 citations

Phosphorous‐Doped High‐Entropy Oxides Enabling Full Spectrum Utilization of BiVO4 Photoanodes for Efficient Water Oxidation

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SWShuaipeng WangBeijing Microelectronics Technology InstituteHYHao YuanNorthwestern Polytechnical UniversityJFJiayue FengNorthwestern Polytechnical University

Key Points

  • PHBVO achieves a photocurrent density of 6.36 mA cm−2, indicating significant improvement in water oxidation efficiency.
  • Broadband solar absorption increased to 86% for PHBVO compared to 31% for pristine BiVO4, showcasing the effectiveness of high-entropy oxides.
  • Systematic studies revealed that lattice distortion in high-entropy oxides led to favorable band structure changes and reduced reaction overpotential.
  • Stability under AM 1.5 G illumination exceeded 160 hours due to the robust high-entropy oxide interface, supporting long-term applications.

Abstract

Abstract High‐performance BiVO 4 photoanodes generally requires elaborate modification on both bulk and surfaces, which inevitably increases the complexity of photoanode design. Herein, a phosphorus‐doped high‐entropy oxide composite (P‐HEO) is decorated on a BiVO 4 photoanode (denoted as PHBVO), which achieves broadband solar absorption (86% in 300–2500 nm vs 31% for pristine BiVO 4 ) and delivers a photocurrent density of 6.36 mA cm −2 at 1.23 V RHE , representing a fourfold enhancement compared to pristine BiVO 4 photoanodes. Systematical studies reveal that lattice distortion in P‐HEOs induces band structure reconstruction and oxygen vacancy formation, while interfacial P─O coupling promotes d‐p orbital hybridization, reducing the oxygen evolution reaction overpotential. Moreover, the photothermal effect of P‐HEOs suppresses carrier recombination, enhancing electron mobility by 2.6‐fold. PHBVO demonstrates stability exceeding 160 h under continuous AM 1.5 G illumination, which is attributed to a robust high‐entropy oxide interface. This work provides a proof‐of‐concept for the design of efficient photoanodes through surface modification simultaneously achieving the enhancement in light harvesting, carrier transport and surface catalytic activity.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68a360d60a429f7973328e6bhttps://doi.org/10.1002/adfm.202512757
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