Crystal-phase engineering of nanowires and platelets of KxIrO2 for efficient water oxidation
Author(s)
Type
Journal Article
Abstract
IrO2 is one of the most widely investigated electrocatalysts for oxygen evolution reaction in an acidic environment. Increasing the mass activity is an effective way of decreasing the loading of Ir, to ultimately reduce costs. Here, we demonstrate the crystal-phase engineering of two different potassium iridate polymorphs obtained by designing a selective solid-state synthesis of either one-dimensional K0.25IrO2 nanowires with a hollandite crystal structure or two-dimensional KIrO2 hexagonal platelets. Both structures present increased specific and mass electrocatalytic activities for the water oxidation reaction in acidic media compared to commercial rutile IrO2 of up to 40%, with the 1D nanowires outperforming the 2D platelets. XANES, extended X-ray absorption fine structure, and X-ray diffraction investigations prove the structural stability of these two different allotropes of KxIrO2 compounds upon electrocatalytic testing. These low-dimensional nanostructured 1D and 2D KxIrO2 compounds with superior mass activity to commercial IrO2 can pave the way toward the design of new electrocatalyst architectures with reduced Ir loading content for proton exchange membrane water electrolyzer (PEMWE) anodes.
Date Issued
2025-11-12
Date Acceptance
2025-10-08
Citation
ACS Materials Au, 2025, 5 (6), pp.1070-1079
ISSN
2694-2461
Publisher
American Chemical Society
Start Page
1070
End Page
1079
Journal / Book Title
ACS Materials Au
Volume
5
Issue
6
Copyright Statement
© 2025 The Authors. Published by American Chemical Society. This publication is licensed under CC-BY 4.0
License URL
Identifier
10.1021/acsmaterialsau.5c00127
Subjects
iridium oxide
thermal annealing
crystal phase engineering
oxygen evolution
water electrolysis
Publication Status
Published
Date Publish Online
2025-10-15
