Rationally Designed Asymmetric Pt─O─Cu Ligand to Stabilize Active Sites Towards Superior Industrial‐Standard Alkaline Hydrogen Evolution

M Minming Jiang (College of Materials Science and Technology Nanjing University of Aeronautics and Astronautics Nanjing 210016 China) J Jiang Xu Q Qi Zhou (Chongqing University Cancer Hospital Chongqing China) Y Yujie Chen P Paul Munroe (School of Materials Science and Engineering University of New South Wales NSW 2052 Australia) L Linlin Li (College of Materials Science and Technology) Z Zong‐Han Xie (School of Mechanical Engineering University of Adelaide Adelaide, SA 5005 Australia) 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 Developing efficient and durable Pt‐based catalysts via interface engineering remains a critical yet challenging task for water electrolysis under high‐pH conditions. Herein, we design a unique asymmetric Pt─O─Cu ligand at the PtCu 2 (111)/CuO(002) heterojunction interface to promote alkaline HER kinetics. This ligand balances the adsorption and desorption of H* on the Pt site by accelerating electron transfer at the interface while enhancing the adsorption of H 2 O on the Cu site. Moreover, the strong d‐d/sp hybridization and more delocalized d‐DOS located at the Pt─O─Cu ligand enhance the interatomic interactions, which helps alleviate the dissolution and agglomeration of Pt and Cu atoms. As anticipated, the PtCu 2 /CuO requires ultra‐low overpotentials of 10, 14 and 47 mV in, respectively, alkaline, acidic and neutral electrolytes to achieve a current density of 10 mA cm −2 . Even more surprising is that the PtCu 2 /CuO||RuO 2 dual‐electrode hydrolysis cell can stably operate at a high current density of 1 A cm −2 for more than 500 h in a simulated industrial environment, demonstrating significant potential for industrial applications. This work provides a new paradigm for the design of industrially relevant high‐performance Pt‐based alkaline hydrogen evolution catalytic materials.

Article Details

Volume / Issue Vol. 64, Issue 33
Published August 11, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

M

Minming Jiang

College of Materials Science and Technology Nanjing University of Aeronautics and Astronautics Nanjing 210016 China

J

Jiang Xu

Q

Qi Zhou

Chongqing University Cancer Hospital Chongqing China

Y

Yujie Chen

P

Paul Munroe

School of Materials Science and Engineering University of New South Wales NSW 2052 Australia

L

Linlin Li

College of Materials Science and Technology

Z

Zong‐Han Xie

School of Mechanical Engineering University of Adelaide Adelaide, SA 5005 Australia

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