Insights Into the Oxygen Evolution Reaction on an Mn‐Bearing Hematite Electrocatalyst in an Acidic Electrolyte

Platinum group metal‐free catalysts have attracted significant attention due to the high cost and scarcity of iridium for the oxygen evolution reaction (OER) in acidic media. However, the fundamental understanding of catalyst formation and active species under acidic conditions remains limited. In this work, iron–manganese oxide catalysts based on were synthesized via a hydrothermal approach followed by calcination. The as‐prepared materials consist of poorly crystalline Fe 2 O 3 /FeOOH and MnO 2 phases that transform into a disordered mixed‐metal oxide upon thermal treatment. Raman spectroscopy supported by quantum‐chemical calculations indicates the formation of a solid solution in which Mn induces lattice distortion and partial disruption of Fe─O─Fe bonding within the hematite structure. The highest OER activity and stability are obtained after calcination at 350 °C, corresponding to an optimum degree of structural disorder for adsorption processes. Operando Raman spectroscopy reveals potential‐dependent spectral changes, including the emergence of a band at ≈450 cm −1 and enhanced intensity at ≈610 cm −1 , indicating the formation of high‐valent surface species during OER operation. These findings suggest cooperative Fe–Mn interactions and a possible role for substitution‐induced structural disorder in promoting OER activity.

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Publication Details

Journal
ChemSusChem
Published
2026-10-04
DOI
https://doi.org/10.1002/cssc.71101
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
Field-Weighted Citation Impact
0.00

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article

Insights Into the Oxygen Evolution Reaction on an Mn‐Bearing Hematite Electrocatalyst in an Acidic Electrolyte

Lilian Moumaneix, Moritz Karl Rosenthal, Xiangze Kong, Eeva‐Leena Rautama et al.
ChemSusChem
Electrocatalysts for Energy Conversion
article

Insights Into the Oxygen Evolution Reaction on an Mn‐Bearing Hematite Electrocatalyst in an Acidic Electrolyte

Lilian Moumaneix, Moritz Karl Rosenthal, Xiangze Kong, Eeva‐Leena Rautama, Kim Eklund, Polina M. Kalachikova, Tanja M. Kallio, Antti J. Karttunen, Nastaran Farrahi
article en

Abstract

Platinum group metal‐free catalysts have attracted significant attention due to the high cost and scarcity of iridium for the oxygen evolution reaction (OER) in acidic media. However, the fundamental understanding of catalyst formation and active species under acidic conditions remains limited. In this work, iron–manganese oxide catalysts based on were synthesized via a hydrothermal approach followed by calcination. The as‐prepared materials consist of poorly crystalline Fe 2 O 3 /FeOOH and MnO 2 phases that transform into a disordered mixed‐metal oxide upon thermal treatment. Raman spectroscopy supported by quantum‐chemical calculations indicates the formation of a solid solution in which Mn induces lattice distortion and partial disruption of Fe─O─Fe bonding within the hematite structure. The highest OER activity and stability are obtained after calcination at 350 °C, corresponding to an optimum degree of structural disorder for adsorption processes. Operando Raman spectroscopy reveals potential‐dependent spectral changes, including the emergence of a band at ≈450 cm −1 and enhanced intensity at ≈610 cm −1 , indicating the formation of high‐valent surface species during OER operation. These findings suggest cooperative Fe–Mn interactions and a possible role for substitution‐induced structural disorder in promoting OER activity.

ChemSusChemVol. 19(19)
Aalto University (FI)
European Synchrotron Radiation Facility, Aalto-Yliopisto, China Scholarship Council, Fortums Stiftelse
Openalex Percentile: Top 33%
Electrocatalysts for Energy Conversion
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