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◆ Angewandte Chemie International Edition2026-07-31· Overpotential

Ultrafine Iridium‐Oxide Solid Solutions for Efficient Acidic Water Oxidation

Jiahui Feng, Zijun Yang, Wanqing Song, Tao Zhang, Xinyi Yang, Kunyan Qian, Xin Wang, Haozhi Wang, Jia Ding, Wenbin Hu

原始摘要(英文原文)· Original abstract
ABSTRACT The high cost and inadequate catalytic performance of IrO 2 are primary factors hindering the development of proton exchange membrane water electrolyzer (PEMWE). Herein, we propose dual criteria of cohesive energy ( ΔCE ) and atomic radius ( ΔR ) discrepancies between Ir and heteroatoms for guiding the synthesis of ultrafine IrO 2 ‐based solid solutions (M x Ir 1−x O 2 ). Elements of Mo and W with lowest ΔCE and ΔR exhibit the most facilitated alloying with Ir and minimized particle coarsening, enabling the fabrication of sub‐3 nm M x Ir 1−x O 2 (x = 33.3%−50%). The extensive Mo substitution in Mo 1/3 Ir 2/3 O 2 effectively modulates Ir─O covalency and generates abundant Brønsted acid sites as proton acceptors. These factors synergistically accelerate the deprotonation of *OH and *OOH and promote rapid proton transfer, thereby significantly reducing the energy barrier of oxygen evolution reaction (OER) and alleviating the proton accumulation‐induced site poisoning. Resultantly, Mo 1/3 Ir 2/3 O 2 delivers a low overpotential of 540 mV at 1 A cm −2 and an excellent stability of 700 h. PEMWE using Mo 1/3 Ir 2/3 O 2 achieves a high current density of 3 A cm −2 at 2.26 V and steadily operates at 1 A cm −2 for 625 h. This work transcends traditional hetero‐element doping paradigm for IrO 2 modification, offering a new perspective for developing high‐performance and low‐iridium OER catalysts.
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