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May 8, 2026Advanced Energy Materials2 citations

Transition Metal Oxide Catalysts for Acidic Oxygen Evolution: Current Status and Key Strategies Toward Efficient PEM Water Electrolysis

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SYShisheng YuanZXZ XuHDHongnan Du

Key Points

  • This review aims to evaluate transition metal oxide catalysts for the acidic oxygen evolution reaction in PEM water electrolysis.
  • Summarizes advances in catalysts beyond pure IrO2 and RuO2
  • Discusses mechanisms of catalytic activity and stability
  • Highlights strategies like heterostructure construction and elemental doping.
  • Transition metal oxides show potential to lower costs compared to noble metals.
  • Catalysts like spinels and perovskites are discussed for enhanced performance.
  • Emerging strategies including AI-assisted design could lead to more efficient catalysts.

Abstract

ABSTRACT Proton exchange membrane water electrolysis (PEMWE) is a promising technology for green hydrogen production due to its high efficiency, compact design, and flexible operation. However, the reliance on noble metal‐based anode catalysts significantly increases hydrogen production costs. Transition metal oxides have emerged as alternatives for the acidic oxygen evolution reaction (OER) because of their diverse compositions, tunable structures, and lower cost. This review summarizes recent advances in transition metal oxide catalysts beyond pure IrO 2 , RuO 2 , and their mixtures. Fundamental OER mechanisms, including the adsorbate evolution mechanism, lattice oxygen mechanism, and oxide pathway mechanism, are introduced, with emphasis on their roles in regulating catalytic activity and stability. Representative catalyst systems such as spinels, perovskites, pyrochlores, dioxides, and high entropy oxides are systematically reviewed, highlighting performance enhancement strategies including heterostructure construction, elemental doping, and defect engineering. Emerging concepts such as reaction pathway engineering, corrosion suppression, and dynamic structural stability are discussed as effective approaches to overcoming the trade‐off between activity and stability. Finally, current challenges and future perspectives are outlined, with emphasis on artificial intelligence‐assisted catalyst design, characterization optimization, scalable synthesis, and standardized industrial evaluation, to accelerate the practical deployment of advanced acidic OER catalysts in sustainable hydrogen production.

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Cite This Study

Yuan et al. (2026) studied this question.

synapsesocial.com/papers/69fd8021bfa21ec5bbf0888ahttps://doi.org/10.1002/aenm.71024
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Also Consider

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  1. 1Recent Advances In Low‐ and Nonnoble Metal Catalysts for Acidic Oxygen Evolution Reaction2025
  2. 2Engineering oxygen-evolving catalysts for acidic water electrolysis2024 · 4 citations
  3. 3Non-Iridium-Based Electrocatalysts for the Acidic Oxygen Evolution Reaction: Progress and Perspectives.2026 · 3 citations
  4. 4Ru/Ir‐Based Electrocatalysts for Oxygen Evolution Reaction in Acidic Conditions: From Mechanisms, Optimizations to Challenges2024 · 285 citations
  5. 5Acid-tolerant MOF-derived electrocatalysts for the oxygen evolution reaction2026