Abstract
IrMnFeCoNiOx and IrOx oxides self-supported on carbon fibres were synthesised through a facile and rapid thermal decomposition in air (300–500 °C, 1 h). The effect of temperature on the material's properties and their performance towards the acidic oxygen evolution reaction (OER) were assessed. For IrMnFeCoNiOx catalysts, the higher the annealing temperature, the better the catalytic activity and stability towards the acidic OER, which was assigned to the crystallisation to a spinel structure (cubic Fd3m). The IrMnFeCoNiOx annealed at 500 °C reached 10 mA cm−2 at a low overpotential of 283 mV with no evident signs of deactivation for 70 h operating at 10 mA cm−2. On the contrary, for IrOx crystallisation towards rutile IrO2 with increasing temperature resulted in an activity decay, with the overpotential to reach 10 mA cm−2 progressively worsening from 304 mV to ca. 400 mV. At comparable iridium loading (0.4 mgIr cm−2), the best performing IrMnFeCoNiOx catalyst surpasses in terms of activity and stability the best performing IrOx catalysts. This methodology that required only metal chloride precursors, water and heating enables the synthesis of metal oxide spinel catalysts, including high entropy spinel, through a fast, simple and scalable route. In addition, this route can aid in the design of low Ir-loading catalysts for the production of green hydrogen.
| Original language | English |
|---|---|
| Article number | 101293 |
| Journal | Materials today sustainability |
| Volume | 33 |
| Number of pages | 13 |
| ISSN | 2589-2347 |
| DOIs | |
| Publication status | Published - Mar 2026 |
| MoE publication type | A1 Journal article-refereed |
Bibliographical note
Publisher Copyright:Copyright © 2025. Published by Elsevier Ltd.
Fields of Science
- Green hydrogen
- High entropy oxides
- Iridium oxide
- Oxygen evolution reaction
- Proton exchange membrane water electrolysers
- Spinel catalysts
- 114 Physical sciences
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