3D‐Printing Starfish‐Inspired Gas‐Evolving Electrode Scaffolds Enable Ampere‐Level Alkaline Water Electrolysis

M Mengqi Luo (Key Laboratory of Systems Health Science of Zhejiang Province, School of Life Science, Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences) W Wei Sang Y Yu Tian X Xingchuan Li (State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan P. R. China) J Jingxuan Chen G Gangwen Fu (Frontiers Science Center for Flexible Electronics, Institute of Flexible Electronics Northwestern Polytechnical University Xi'an P. R. China) Z Zhenzhi Xia (State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan P. R. China) C Cheng Chen X Xi Xu (Department of Materials, Imperial College London, Exhibition Road, London SW7 2AZ, U.K.) T Tongle Bu J Jian Peng J John Wang (Department of Materials Science and Engineering) Z Zongkui Kou (State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan P. R. China)

Abstract

ABSTRACT Alkaline water electrolysis (AWE) mitigates the high cost and immaturity of polymer electrolyte membrane‐based water electrolysis (PEMWE) for green hydrogen production. However, its industrial application at ampere‐level current densities (ACDs) remains challenging. Conventional disordered gas‐evolving electrode (GEE) scaffolds endow with sluggish bubble detachment kinetics and mechanical instability, preventing operation at high ACDs, while rational scaffold designs for accelerating bubble detachment remain rarely explored. Inspired by starfish scaffolds, we design and fabricate a biomimetic GEE with conical sieve‐plate hole scaffolds via 3D printing. Combined COMSOL simulations and in situ bubble behavior analyses reveal that like the breath and mass exchange of starfish, the sieve plate optimizes bubble force balance to accelerate detachment, while the conical structure conducts bubbles rapidly into the electrolyte. Such starfish‐inspired GEE design yields a 21‐fold lower mass‐transfer overpotential vs. current density slope than that of common flat round‐hole scaffold. Consequently, champion lowest overpotentials of 159 and 430 mV among all the well‐documented state‐of‐the‐art GEEs are achieved at the ACD of 1000 mA cm −2 for HER and OER, respectively. Moreover, our starfish‐inspired GEE sustains ACDs operation with ≈100% Faraday efficiency for over 150 h, demonstrating its potential for practical AWE applications.

Article Details

Volume / Issue Vol. 38, Issue 33
Published June 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

M

Mengqi Luo

Key Laboratory of Systems Health Science of Zhejiang Province, School of Life Science, Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences

W

Wei Sang

Y

Yu Tian

X

Xingchuan Li

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan P. R. China

J

Jingxuan Chen

G

Gangwen Fu

Frontiers Science Center for Flexible Electronics, Institute of Flexible Electronics Northwestern Polytechnical University Xi'an P. R. China

Z

Zhenzhi Xia

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan P. R. China

C

Cheng Chen

X

Xi Xu

Department of Materials, Imperial College London, Exhibition Road, London SW7 2AZ, U.K.

T

Tongle Bu

J

Jian Peng

J

John Wang

Department of Materials Science and Engineering

Z

Zongkui Kou

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan P. R. China