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August 19, 2025Journal of the American Chemical Society26 citations

Identifying Active Sites of IrOx Catalysts for OER: A Combined Operando XAS, SEIRAS, and Theoretical Study

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NTNeha ThakurYRYadan RenMKMukesh Kumar

Key Points

  • Amorphous iridium oxide exhibits higher OER activity due to structural defects that generate active species, enhancing catalysis.
  • Samples with higher monoclinic content show significant differences in OER activity compared to crystalline IrO2.
  • Operando X-ray absorption spectroscopy and operando surface-enhanced infrared absorption spectroscopy were utilized in the analysis of iridium oxide samples.
  • Understanding the role of structural phases in catalyst performance may facilitate improved design of new OER catalysts.

Abstract

Iridium oxide is a benchmark catalyst for anodic oxygen evolution reactions due to its high activity and durability. However, debates persist regarding the short lifespan of reaction intermediates and whether amorphous phases exhibit higher activity in comparison to crystalline ones. Herein, we examined IrOx catalysts with different degrees of crystallinity (SA3.5, SA58, SA103, and SA14.6, named after their BET surface area) and revealed the relation between their structures and OER activities. The atomic pair distribution function analyses show that the amorphous IrOx (SA3.5, SA103, and SA14.6) possesses monoclinic and orthorhombic-like structural phases or motifs, which differ from the typical tetragonal symmetry of crystalline IrO2. Operando X-ray absorption spectroscopy (XAS) and operando surface-enhanced infrared absorption spectroscopy (SEIRAS) revealed that the SA3.5 sample, with higher monoclinic content, exhibits a structure containing corner- and edge-sharing octahedra with highly undercoordinated sites, leading to structural defects. These defects generate active electrophilic OI- species, facilitating the generation of *OOH intermediates and enhancing OER activity. Theoretical studies reveal that they also lower the energy barrier for the monoclinic crystal structure. These findings offer a fundamental understanding of amorphous iridium oxides and provide inspiration for developing new OER catalysts.

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Cite This Study

Thakur et al. (2025) studied this question.

synapsesocial.com/papers/68af4754ad7bf08b1ead3f74https://doi.org/10.1021/jacs.4c18510
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