Haoyin Zhong, Qi Zhang, Wen Cui, Han Wen, Guangxin Sun, Junchen Yu, Chao Wu, Zhi‐Gen Yu, Ting Xiong, Shibo Xi, Junmin Xue
ABSTRACT Activating robust oxygen evolution reaction (OER) pathways in acidic media remains a major challenge for scalable hydrogen production via proton‐exchange membrane water electrolysis (PEMWE). Here, we report a lithiation/delithiation (L/D) engineering strategy that enables a mechanistic switch in IrO 2 from the conventional adsorbate evolution mechanism (AEM) to a radical oxygen coupling pathway. This transition is driven by two cooperative effects: shortened Ir–Ir distances that geometrically favor O–O coupling; and enhanced oxygen hole formation on adsorbed oxygen species ( * O ads ), promoting the generation of reactive O ads 2−x like intermediates. Operando spectroscopy and density functional theory (DFT) calculations corroborate that these geometric and electronic modulations synergistically activate direct ( * O ads – * O ads ) coupling. The L/D‐IrO 2 catalyst achieves an ultralow OER overpotential of 204 mV at 10 mA cm −2 and delivers outstanding durability over 1200 h in 0.5 m H 2 SO 4 . Integrated into a PEMWE device, it enables a current density of 3 A cm −2 at only 1.799 V, and stable operation at 500 mA cm −2 for 1200 h, with extended high‐current durability from 1 to 3 A cm −2 . These findings establish a clear structure‐activity correlation for oxygen coupling activation and provide a generalizable strategy for designing efficient and durable acidic OER electrocatalysts.