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February 2, 2026ACS Applied Materials & Interfaces1 citations

Dermis-Inspired Ni 3 S 2 –Modified Bamboo-Based Sandwich-Structured Flexible Electrodes

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YSYiqing ShiXYXianchun YuRZRongxiang Zeng

Key Points

  • To design and prepare sandwich-structured flexible electrodes with high specific capacitance using biomass materials.
  • Designed sandwich-structured flexible electrodes inspired by skin structure.
  • Used nickel sulfide-modified bamboo fiber membranes as the surface layer.
  • Implemented a dual-network conductive adhesive consisting of polysiloxane and polypyrrole-coated bamboo fiber.
  • Measured electrochemical performance and areal capacitance.
  • The electrodes exhibited an areal capacitance of 6760 mF·cm-2.
  • Enhanced mechanical strength compared to traditional electrodes was observed.
  • Shortened electron transport pathways were achieved through biomimetic design.

Abstract

To meet the stringent demands for high specific capacitance in biomass-based flexible electrodes, inspired by skin structure, this work designed and prepared novel sandwich-structured flexible electrodes (SSFE). Nickel sulfide-modified bamboo fiber membranes (Ni3S2/BFM) form the surface layer, while a dual-network flexible conductive adhesive (CA), composed of a highly flexible polysiloxane matrix and reinforced with polypyrrole-coated bamboo fiber (PPy@BF), serves as the core layer. The Ni/Ni3S2 support network and the dual-network conductive adhesive, composed of polydimethylsiloxane (PSi) and Cu/PPy@BF, ensure efficient electronic transport. The SSFE exhibits excellent electrochemical performance; the areal capacitance reaches 6760 mF·cm-2. This biomimetic sandwich-structured flexible design enhances the mechanical strength of bamboo fiber-based electrodes and shortens electron transport pathways, which provides valuable guidance for developing high-performance biomass-based flexible electrodes.

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Cite This Study

Shi et al. (2026) studied this question.

synapsesocial.com/papers/6980fd9dc1c9540dea80f5c4https://doi.org/10.1021/acsami.5c17495
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