Roll-to-Roll Fabrication of Integrated Cathodes Enabled by Asymmetric Dual-Atom Catalysts for Bipolar Stacking Ampere-Hour-Scale Zn-Air Batteries

Abstract

Zn-air batteries (ZABs) represent a highly promising electrochemical energy storage technology, yet their practical deployment remains constrained by several fundamental challenges, including sluggish oxygen reaction kinetics at the cathode, limited power output and capacity in conventional device architectures. Herein, we demonstrate an efficiently integrated strategy to systematicly address these issues. First, a metal-semimetal dual-atom catalysts consisting of Fe-Se dual-atom sites (FeSe-NC) is synthesized, whose unique electronic structure and metal-semimetal synergistic effects significantly enhanced oxygen electrocatalytic activity, achieving a half-wave potential of 0.920 V and a turnover frequency of 0.77 e s -1 site -1 . Furthermore, a scalable roll-to-roll process was developed to fabricate an integrated air cathode with a highly uniform catalytic layer structure. Ultimately, the electrode was employed in a bipolar stacking cell configuration. Benefiting from these multi-level innovations, the assembled ampere-hour-scale ZABs delivered a high power output of 3.5 W, a large capacity of 6.09 Ah, and long-term cycling stability over 60 h at 1.0 A. This work systematically advances the development of high-performance, long-lasting ZABs through catalyst design, electrode engineering, and device configuration optimization, providing a viable technical pathway for their industrialization.

Supplementary files

Article information

Article type
Edge Article
Submitted
30 Oct 2025
Accepted
07 Dec 2025
First published
09 Dec 2025
This article is Open Access

All publication charges for this article have been paid for by the Royal Society of Chemistry
Creative Commons BY-NC license

Chem. Sci., 2026, Accepted Manuscript

Roll-to-Roll Fabrication of Integrated Cathodes Enabled by Asymmetric Dual-Atom Catalysts for Bipolar Stacking Ampere-Hour-Scale Zn-Air Batteries

Y. Wei, Y. Ma, J. Huang, C. Lu, L. Li, X. Gao, D. Lützenkirchen-Hecht, X. Zhuang, K. Yuan and Y. Chen, Chem. Sci., 2026, Accepted Manuscript , DOI: 10.1039/D5SC08392C

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