Jiaqi Kang, Sebastian Möhle, Xingli Wang, Miklós Márton Kovács, Jakub Drnec, Kerolus Nasser Nagi Nasralla, Paul Wolfgang Buchheister, Johannes Schmidt, Dominik Dworschak, Peter Strasser
High Resolution Image Download MS PowerPoint Slide Developing catalysts with improved activity and stability compared to rutile IrO 2 or amorphous IrO x remains a technical priority for advancing the oxygen evolution reaction (OER) in proton-exchange membrane water electrolyzers (PEMWEs). Here, we report structure–OER activity–stability relationships across a family of alkali cation–intercalated iridates, uncovering a structural evolution from hollandite to layered-type structures, characterized by the ratio of edge-sharing to corner-sharing connections of [IrO 6 ] octahedral motifs. In particular, Li-IrO x and Cs-IrO x demonstrate excellent PEMWE performance over a wide current range, pushing Ir demand to new lows. Both achieve a power-specific Ir demand of 0.06 g Ir kW –1 . However, Cs-IrO x shows a greater potential for long-term stability, indicating that iridates with a higher proportion of edge-sharing motif connections possess enhanced structural robustness. This work offers new insights into balancing catalytic activity and stability through atomic-scale motif connectivity tuning and presents a viable alternative to state-of-the-art rutile or amorphous iridium oxides.