Yaobin Wang, Chaoyue Xie, Ruiqing Zhao, Zhiyuan Su, Hongmei Li, Hang Zhang, Bo Li, Changhui Zhou, Yongyang Chen, Zeyu Du, Jinhua Li, Yunfei Bu, Jing Bai, Baoxue Zhou, Emiliano Cortés, Min Liu
Electrochemical advanced oxidation that directly activates O2 through the oxygen reduction reaction (ORR) to generate hydroxyl radicals (•OH) offers a sustainable strategy for degrading persistent organic pollutants. However, prevailing approaches typically rely on a stepwise process involving the 2e⁻ ORR to produce H2O2 followed by 1e⁻ activation. High barriers associated with intermediate desorption and inter-site transfer consequently limit the •OH yield. Here, we construct a single-active-site architecture in the perovskite oxide Pr1.0Sr1.0Fe0.5Zn0.25Mo0.25O4-δ (PSFZM) that enables a direct three-electron ORR pathway for efficient •OH generation. The Znδ⁺ single active center selectively stabilizes *OOH and *H2O2 through weak orbital interactions, while an adjacent Mo atom polarizes the O atoms of adsorbed H2O2, promoting cleavage of the peroxide bond at the active site. This strategy avoids intermediate desorption and migration, enabling continuous proton-coupled electron transfer. The catalyst achieves a •OH production rate of 821 μmol h⁻1 and an O2 utilization of 37.7%, metrics competitive with previously reported systems. In a membrane-free flow cell that uses gaseous O2 directly, the •OH generation efficiency reaches 64.7%. By combining atomic-level catalyst design with reactor engineering, this work establishes a scalable platform for sustainable wastewater treatment.