Coordination Engineering of Ir─Mo Atomic Pair Sites to Break Scaling Limitations for Acidic Oxygen Evolution

H Hongjun Chen (Department of General Surgery, Sir Run-Run Shaw Hospital, Zhejiang University School of Medicine) L Liming Deng (College of Materials Science and Technology) L Luqi Wang (Confucius Energy Storage Lab, School of Energy and Environment & Z Energy Storage Center) S Sung‐Fu Hung (Department of Applied Chemistry National Yang Ming Chiao Tung University Hsinchu Taiwan) G Gengyu Xing (College of Materials Science and Technology) Y Yu‐Cheng Liu (School of Chemical Engineering Ocean and Life Sciences Dalian University of Technology Panjin China) M Ming‐Hsuan Li (Department of Applied Chemistry National Yang Ming Chiao Tung University Hsinchu Taiwan) Y Ying Zhang T Tao Wang L Linlin Li (College of Materials Science and Technology) R Renli Fu (College of Materials Science and Technology Nanjing University of Aeronautics and Astronautics Nanjing China) Y Yuping Wu (Confucius Energy Storage Lab, School of Energy and Environment & Z Energy Storage Center) S Shengjie Peng (Confucius Energy Storage Lab, School of Energy and Environment & Z Energy Storage Center)

Abstract

ABSTRACT Coordination engineering of single‐atom catalysts (SACs) is a powerful strategy to address durability and activity challenges in the acidic oxygen evolution reaction (OER). Here, we obtain two distinct Ir single‐atom configurations on MoO 3 support by regulating the second‐shell coordination environment. Compared with the weakly interacting Ir─O─Mo structure, atomic pair sites formed through direct Ir─Mo coordination exhibit strong electronic coupling with the support, thereby enhancing atomic dispersion and structural stability. In situ experimental and theoretical studies reveal that the Ir─Mo pair sites trigger a new oxide‐mediated pathway, in which dynamic hydroxyl spillover from Mo to Ir site effectively facilitates *OOH formation. This process breaks the linear scaling relationship between *OH and *OOH adsorption, lowering the energy barrier of the rate‐limiting step and enabling superior OER kinetics. As a result, the Ir O+Mo /MoO 3 catalyst achieves outstanding stability for over 1500 h at 10 mA cm −2 in acidic electrolyte and sustains continuous operation for 300 h at 1.0 A cm −2 in the proton exchange membrane water electrolyzer. This work provides novel insights into the coordination engineering of SACs and opens a promising avenue for overcoming scaling limitations in acidic OER catalysis.

Article Details

Volume / Issue Vol. 65, Issue 33
Published August 10, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

H

Hongjun Chen

Department of General Surgery, Sir Run-Run Shaw Hospital, Zhejiang University School of Medicine

L

Liming Deng

College of Materials Science and Technology

L

Luqi Wang

Confucius Energy Storage Lab, School of Energy and Environment & Z Energy Storage Center

S

Sung‐Fu Hung

Department of Applied Chemistry National Yang Ming Chiao Tung University Hsinchu Taiwan

G

Gengyu Xing

College of Materials Science and Technology

Y

Yu‐Cheng Liu

School of Chemical Engineering Ocean and Life Sciences Dalian University of Technology Panjin China

M

Ming‐Hsuan Li

Department of Applied Chemistry National Yang Ming Chiao Tung University Hsinchu Taiwan

Y

Ying Zhang

T

Tao Wang

L

Linlin Li

College of Materials Science and Technology

R

Renli Fu

College of Materials Science and Technology Nanjing University of Aeronautics and Astronautics Nanjing China

Y

Yuping Wu

Confucius Energy Storage Lab, School of Energy and Environment & Z Energy Storage Center

S

Shengjie Peng

Confucius Energy Storage Lab, School of Energy and Environment & Z Energy Storage Center