Enhanced supercapacitor performance using an anodized stainless steel flexible electrode coated with an electron cyclotron resonance carbon film

Wenlei Zhang , Zhuohao Liu , Jiulong Liu , Chenyu Chai , Peidong Xue , Gang Li , Zhongyun Yuan , Lei Yang

Soft Science ›› 2026, Vol. 6 ›› Issue (1) -16.

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Soft Science ›› 2026, Vol. 6 ›› Issue (1) -16. DOI: 10.20517/ss.2025.95
Research Article
Enhanced supercapacitor performance using an anodized stainless steel flexible electrode coated with an electron cyclotron resonance carbon film
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Abstract

Electrochemically anodized stainless steel (SS) shows promise as a free-standing electrode in flexible supercapacitors due to its low cost, eco-friendly nature, and binder-free characteristics. However, unsatisfactory cycling stability limits its practical use in wearable electronics. Herein, we introduce a conductive carbon film deposited on the surface of the anodized SS electrode as a protective layer via electron cyclotron resonance sputtering. By optimizing the deposition bias voltage and deposition time, the resulting flexible electrode exhibits a specific capacitance of 271.6 mF·cm-2 at a current density of 1 mA·cm-2, representing a 2.24-fold increase over the uncoated counterpart, with 88.7% capacitance retention after 8,000 cycles. The enhanced performance is closely related to the conductivity of the surface coating, which depends on the sp2/sp3 ratio (the relative proportion of graphitic to diamond-like carbon bonding). The carbon film-coated anodized SS electrode is combined with an activated carbon on carbon cloth electrode and a gel electrolyte to produce a flexible supercapacitor. The energy storage device exhibits a wide operating potential window of 1.8 V, a high energy density of 51.70 mWh·cm-3, and a power density of 0.50 W·cm-3, accompanied by robust flexibility and mechanical stability. These findings may pave the way for the development of high-performance, flexible, and cost-effective supercapacitors compatible with large-scale semiconductor device manufacturing.

Keywords

Carbon film / anodized stainless steel / electron cyclotron resonance sputtering / cycling stability / flexible supercapacitor

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Wenlei Zhang, Zhuohao Liu, Jiulong Liu, Chenyu Chai, Peidong Xue, Gang Li, Zhongyun Yuan, Lei Yang. Enhanced supercapacitor performance using an anodized stainless steel flexible electrode coated with an electron cyclotron resonance carbon film. Soft Science, 2026, 6(1): -16 DOI:10.20517/ss.2025.95

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