Breaking Scaling Relations via Constructing Short Ir‐O‐Cr Asymmetric Units to Trigger O‐O Coupling in Oxygen Evolution

ABSTRACT The scaling relations among oxygenated intermediates constrain a thermodynamic limitation on the oxygen evolution reaction (OER) in proton exchange membrane water electrolysis (PEMWE). Herein, we break this limitation via Cr doping into iridium oxide, which induces compressive strain and constructs short, distorted Ir‐O‐Cr asymmetric units with a shortened Ir‐Cr distance. This structure configuration enables direct O‐O coupling during OER catalysis, which activates oxygen path mechanism (OPM) and thus circumvents the scaling‐relation‐limited step of conventional adsorbate evolution mechanism. Charge transfer from Cr to Ir downshifts the Ir d‐band center and enhances Ir‐O covalency, which lowers the kinetic barrier for oxygen intermediates formation. Moreover, Cr doping strengthens the interfacial hydrogen‐bond network, facilitating proton diffusion and thus mitigating catalyst degradation caused by local proton accumulation. The obtained catalyst delivers a low overpotential of 223 mV at 10 mA cm −2 and operates stably over 300 h, significantly outperforming commercial IrO 2 (271 mV, 7 h). The catalyst‐based PEMWE delivers a high current density of 3 A cm −2 at 2.05 V and shows stable performance under practical operations. This work provides an effective strategy to activate OPM pathway through constructing asymmetric units for efficient OER catalysts beyond scaling relations.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-05-06
DOI
https://doi.org/10.1002/adfm.75742
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
Field-Weighted Citation Impact
0.00

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article

Breaking Scaling Relations via Constructing Short Ir‐O‐Cr Asymmetric Units to Trigger O‐O Coupling in Oxygen Evolution

Yi Yue, Baoning Zhu, Kai Zhao, Wansheng Hao et al.
Advanced Functional Materials
Electrocatalysts for Energy Conversion
article

Breaking Scaling Relations via Constructing Short Ir‐O‐Cr Asymmetric Units to Trigger O‐O Coupling in Oxygen Evolution

Yi Yue, Baoning Zhu, Kai Zhao, Wansheng Hao, Jun Man, Meiling Dou, Saiyue Cheng, Qingqing Ye, Feng Wang
article en

Abstract

ABSTRACT The scaling relations among oxygenated intermediates constrain a thermodynamic limitation on the oxygen evolution reaction (OER) in proton exchange membrane water electrolysis (PEMWE). Herein, we break this limitation via Cr doping into iridium oxide, which induces compressive strain and constructs short, distorted Ir‐O‐Cr asymmetric units with a shortened Ir‐Cr distance. This structure configuration enables direct O‐O coupling during OER catalysis, which activates oxygen path mechanism (OPM) and thus circumvents the scaling‐relation‐limited step of conventional adsorbate evolution mechanism. Charge transfer from Cr to Ir downshifts the Ir d‐band center and enhances Ir‐O covalency, which lowers the kinetic barrier for oxygen intermediates formation. Moreover, Cr doping strengthens the interfacial hydrogen‐bond network, facilitating proton diffusion and thus mitigating catalyst degradation caused by local proton accumulation. The obtained catalyst delivers a low overpotential of 223 mV at 10 mA cm −2 and operates stably over 300 h, significantly outperforming commercial IrO 2 (271 mV, 7 h). The catalyst‐based PEMWE delivers a high current density of 3 A cm −2 at 2.05 V and shows stable performance under practical operations. This work provides an effective strategy to activate OPM pathway through constructing asymmetric units for efficient OER catalysts beyond scaling relations.

Advanced Functional Materials
Fuel Cells and Hydrogen (BE), Beijing University of Chemical Technology (CN)
National Natural Science Foundation of China
Clean water and sanitation
Openalex Percentile: Top 15%
Electrocatalysts for Energy Conversion
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