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Paper | Open Access

Bionic stacked 3D engineered functional electrodes for ultra-high efficient hydrogen production

Zhaolong Wang1 ( )Xiaolong Wang1 Mingzhu Xie1 Yong Shuai1 ( )Qi Ge2 ( )
School of Energy Science and Engineering, Harbin Institute of Technology, Harbin 150001, People’s Republic of China
Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen 518055, People’s Republic of China
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Abstract

The bubbles formed on the electrodes tend to stick to the reaction area during hydrogen (H2) production, hindering the continuous reaction, which drastically reduces the H2 production efficiency. In this work, a customizable multifunctional three-dimensional (3D) electrode with bionic structures is proposed and precisely fabricated by the projection microstereolithography (PμSL) 3D printing technique, which facilitates the catalytic reaction and the detachment of H2 bubbles with an asymmetrically wetted bioinspired functional membrane to allow bubbles to pass through based on Janus effects. The 3D bionic functional electrodes exhibit excellent H2 production performance. At the same voltage, the current density of our 3D electrode is 2.5 times greater than that of a two-dimensional (2D) electrode and 8 times greater than that of a one-dimensional (1D) common flat electrode with the same surface area. Moreover, the amount of H2 collected from a 3D bionic functional electrode is 53.9% and 172.1% greater than that collected from 2D and 1D electrodes with the same catalyst size, respectively. Significantly, a 400 cm2 panel reactor system based on biomimetic 3D functional electrodes enables one-week continuous operation with ultra-high safety and durability in H2 production. Coupled with a solar panel, it achieves long-term outdoor H2 production and gas collection.

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International Journal of Extreme Manufacturing

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Cite this article:
Wang Z, Wang X, Xie M, et al. Bionic stacked 3D engineered functional electrodes for ultra-high efficient hydrogen production. International Journal of Extreme Manufacturing, 2026, 8(3). https://doi.org/10.1088/2631-7990/ae3cd4

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Received: 12 May 2025
Revised: 08 September 2025
Accepted: 23 January 2026
Published: 11 March 2026
© 2026 The Author(s).

Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.