Directed Amorphous‐to‐Amorphous Reconstruction Toward Efficient Oxygen Evolution

C Cheng‐Long Peng (Faculty of Materials Technology Shanghai Institute of Technology Shanghai P. R. China) H Hang Wang (State Key Laboratory of Fluid Power and Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou, China.) Q Qian Wang H Hong‐Jian Qi (Faculty of Materials Technology Shanghai Institute of Technology Shanghai P. R. China) J Jian‐Yong Zhang (Faculty of Chemical Engineering and Energy Technology Shanghai Institute of Technology Shanghai P. R. China) R Rui Zhang H He Lin (Shanghai Synchrotron Radiation Facility) W Wen Wen S Shuang Song (Department of Biostatistics) N Na Zhang (High Magnetic Field Laboratory, Hefei Institutes of Physical Science) Y Yong‐Zheng Fang (Faculty of Materials Technology Shanghai Institute of Technology Shanghai P. R. China) F Fang‐Na Dai (Shandong Key Laboratory of Intelligent Energy Materials School of Materials Science and Engineering, China State Key Laboratory of Heavy Oil Processing China University of Petroleum (East China) Qingdao Shandong P. R. China) M Min Zhou

Abstract

ABSTRACT To fully unlock catalytic potential in the oxygen evolution reaction (OER), it is essential to guide the reconstruction process, orienting the evolution from the initial amorphous state into a more potent amorphous structure. We develop an amorphous cobalt coordination polymer (aCo) pre‐catalyst via monodentate end‐capping. In‐situ synchrotron radiation X‐ray diffraction reveals that CH 3 CN coordination disrupts the long‐range topological order while preserving local motifs. The obtained metastable amorphous structure redirect spontaneous surface reconstruction into an amorphous cobalt oxyhydroxide (a‐CoOOH) active layer due to strong d–π* interactions with the lower energetic barrier (−8.175 eV) compared to the crystalline phase on its counterpart (−7.441 eV). The unique amorphous‐to‐amorphous transformation effectively activates lattice oxygen within the metastable framework, switching the OER pathways from the adsorbate evolution mechanism to a lattice oxygen‐mediated mechanism and consequently enhancing OER efficiency and stability. The optimized amorphous aCo can achieve an overpotential of 186 mV at 10 mA cm −2 , much lower than those of RuO 2 (233 mV) and crystalline cCo (308 mV), and it demonstrates stability of over 100 h at 2 A cm −2 . This strategy offers a directed surface‐induced approach for designing next‐generation OER electrocatalysts, providing fundamental insights into the correlation between lattice oxygen activity and structural long‐range disorder.

Article Details

Volume / Issue Vol. 65, Issue 16
Published April 13, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

C

Cheng‐Long Peng

Faculty of Materials Technology Shanghai Institute of Technology Shanghai P. R. China

H

Hang Wang

State Key Laboratory of Fluid Power and Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou, China.

Q

Qian Wang

H

Hong‐Jian Qi

Faculty of Materials Technology Shanghai Institute of Technology Shanghai P. R. China

J

Jian‐Yong Zhang

Faculty of Chemical Engineering and Energy Technology Shanghai Institute of Technology Shanghai P. R. China

R

Rui Zhang

H

He Lin

Shanghai Synchrotron Radiation Facility

W

Wen Wen

S

Shuang Song

Department of Biostatistics

N

Na Zhang

High Magnetic Field Laboratory, Hefei Institutes of Physical Science

Y

Yong‐Zheng Fang

Faculty of Materials Technology Shanghai Institute of Technology Shanghai P. R. China

F

Fang‐Na Dai

Shandong Key Laboratory of Intelligent Energy Materials School of Materials Science and Engineering, China State Key Laboratory of Heavy Oil Processing China University of Petroleum (East China) Qingdao Shandong P. R. China

M

Min Zhou