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Synergistic enhancement of Zn-Ion battery performance using CNT/Graphene composite–coated stainless-steel-foil current collectorsopen access

Authors
Heo, HeeyeonLee, JaeyeonJo, Yong-RyunIm, ByoungyongKim, Dae GuenJeon, Jae-YeolChee, Sang-SooYang, SunhyeAn, Geon-Hyoung
Issue Date
Nov-2025
Publisher
Elsevier Ltd
Keywords
Carbon Nanotube; Cathode; Current Collector; Stainless-steel Foil; Zn-ion Battery; Cost Effectiveness; Electric Conductivity; Electrochemical Electrodes; Graphene; Ions; Lithium-ion Batteries; Stainless Steel; Strength Of Materials; Yarn; Zinc Alloys; Battery Performance; Current-collector; Cycling Stability; Graphene Composites; Intrinsic Safety; Ion Batteries; Stainless Steel Foil; Synergistic Enhancement; Zn Ions; Zn-ion Battery; Carbon Nanotubes; Cathodes; Electric Current Collectors
Citation
Composite Structures, v.372, pp 1 - 9
Pages
9
Indexed
SCIE
SCOPUS
Journal Title
Composite Structures
Volume
372
Start Page
1
End Page
9
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/59098
DOI
10.1016/j.compstruct.2025.119570
ISSN
0263-8223
1879-1085
Abstract
Owing to their intrinsic safety, cost-effectiveness, environmental sustainability, and simple assembly, Zn-ion batteries (ZIBs) constitute a promising alternative to Li-ion batteries for next-generation energy storage systems. However, conventional graphite foil–based current collectors exhibit limited scalability due to their poor mechanical strength, which limits their practicability. Moreover, ZIBs inherently suffer from limited reversibility, which leads to rapid capacity degradation and poor cycling stability. To overcome these limitations, functional metal-based current collectors exhibiting high mechanical strength, high electrical conductivity, and strong interfacial adhesion with electrode materials have been proposed. In this study, stainless-steel foil was coated with a graphene–carbon nanotube composite before being annealed at 400 °C to remove surface oxide layers, which enhanced both electrical conductivity and wettability. The resulting ZIB delivered a high specific capacity of 236.8 mAh g−1 at a current density of 0.3C and achieved outstanding cycling stability, retaining 99.0 % of its initial capacity over 1,000cycles at 1.0C. Thus, the proposed approach represents a highly effective and scalable strategy for improving the electrochemical performance of ZIBs. © 2025 Elsevier B.V., All rights reserved.
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