Porous Iridium Oxide Inverse Opal Catalysts Enable Efficient PEM Water Electrolysis

S Sebastian Möhle (Department of Chemistry, Technische Universität Berlin, Straße des 17. Juni 124, 10623 Berlin, Germany) K Kerolus Nasser Nagi Nasralla (Department of Chemistry Technical University Berlin Straße des 17. Juni 124 10623 Berlin Germany) J Jakub Drnec (European Synchrotron Radiation Facility, ID 31 Beamline, BP 220, F-38043 Grenoble, France) W William Chèvremont (The European Synchrotron, ESRF, 71 Avenue des Martyrs, CS40220, Grenoble 38043, France) P Peter Strasser (Department of Chemistry)

Abstract

Abstract Green hydrogen produced by proton exchange membrane water electrolysis (PEM‐WE), has gained significant attention as a future energy carrier and as a feedstock for the chemical industry. Reducing the use of scarce iridium in PEM‐WE anodes is a critical requirement. In this work, porous iridium‐based inverse opal structures ( IrO x ‐IO ) of varying pore sizes are introduced as novel unsupported bulk anode catalysts and their superior performance compared to commercial alternatives is demonstrated. The influence of porosity and surface area on the electrochemical performance is systematically investigated and categorized using voltage breakdown analysis and equivalent circuit modeling. Efficient IrO x ‐IO operation requires balancing surface area and pore size, enabling high performance up to 13 A cm − 2 with iridium utilizations below 0.1 g Ir /kW at 70% efficiency. The findings advance our understanding of unsupported bulk catalysts and, more importantly, expand the range of viable anode materials by clarifying how catalyst morphology influences electrode reactivity.

Article Details

Volume / Issue Vol. 38, Issue 11
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (5)

S

Sebastian Möhle

Department of Chemistry, Technische Universität Berlin, Straße des 17. Juni 124, 10623 Berlin, Germany

K

Kerolus Nasser Nagi Nasralla

Department of Chemistry Technical University Berlin Straße des 17. Juni 124 10623 Berlin Germany

J

Jakub Drnec

European Synchrotron Radiation Facility, ID 31 Beamline, BP 220, F-38043 Grenoble, France

W

William Chèvremont

The European Synchrotron, ESRF, 71 Avenue des Martyrs, CS40220, Grenoble 38043, France

P

Peter Strasser

Department of Chemistry