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March 28, 2026Angewandte Chemie2 citations

Promoting Oxide Pathway Mechanism on Low‐Ruthenium‐Content Oxides for Enhanced Oxygen Evolution in Proton Exchange Membrane Water Electrolyzer

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SLShaozhen LiuSWShiyu WangSLShuxia Liu

Key Points

  • The aim is to develop a low ruthenium content oxide catalyst for improved oxygen evolution in water electrolysis.
  • Synthesis of Ru0.32Ta0.66Mn0.02O2 solid solution oxide for OER.
  • Measurement of overpotential and current density in 0.5 M H2SO4.
  • Use of X-ray absorption spectroscopy to analyze active site configuration.
  • Implementation of in situ infrared spectroscopy and 18O-labeled mass spectrometry for intermediate study.
  • Density functional theory calculations to evaluate electronic interactions.
  • Ru0.32Ta0.66Mn0.02O2 catalyst shows a low overpotential of 175 mV@10 mA cm−2.
  • Achieves current densities of 0.5/1 A cm−2 at cell voltages of 1.539/1.660 V.
  • Maintains stable performance for over 1000 hours at 0.5 A cm−2.
  • XAS results show modulation of active site distance by Ta and Mn enhances O─O coupling.
  • The presence of Mn reduces the OER free energy barrier by promoting the oxide pathway mechanism.

Abstract

ABSTRACT RuO 2 emerges as a promising alternative to IrO 2 for acidic oxygen evolution reaction (OER) due to its relatively low cost. But its practical application remains hindered by stability issues originating from the oxidation of lattice oxygen. Here, we report a low Ru‐content solid solution oxide (Ru 0.32 Ta 0.66 Mn 0.02 O 2 ) for efficient acidic OER. The Ru 0.32 Ta 0.66 Mn 0.02 O 2 catalyst possesses a low overpotential of 175 mV@10 mA cm −2 in 0.5 M H 2 SO 4 and achieves current densities of 0.5/1 A cm −2 at cell voltages of 1.539/1.660 V in a proton exchange membrane water electrolyzer with stable response for over 1000 h@0.5 A cm −2 . X‐ray absorption spectroscopy (XAS) reveals that Ta and Mn effectively modulates the distance between the active sites, thereby promoting the direct O─O coupling. Moreover, Mn increases the surface coverage of *OH, facilitating the oxide pathway mechanism (OPM) for OER. In situ infrared spectroscopy and 18 O‐labeled mass spectrometry confirm the formation of *O─O* intermediate on Ru 0.32 Ta 0.66 Mn 0.02 O 2 via OPM. Density functional theory calculation demonstrates that TaO 2 matrix weakens the d‐p orbital hybridization and attenuate the Ru─O covalency, thereby inhibiting the oxidation of lattice oxygen. In addition, the doped Mn reduces the OER free energy barrier by triggering the OPM, breaking the linear scaling relationship of OER.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69c771508bbfbc51511e12a7https://doi.org/10.1002/ange.8854134
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