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Updated: May 28, 2026

A Simple and Scalable Fabrication Method for Organic Electronic Devices on Textiles
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Cellulose-Based Conductive Hydrogels: Design Strategies and Applications in Flexible Electronics.

Xu Dong1,2, Mizhao Song1, Zhihui Sui1

  • 1College of Light Industry and Textile, Qiqihar University, 42 Culture Street, Qiqihar 161006, China.

Gels (Basel, Switzerland)
|May 27, 2026
PubMed
Summary

Cellulose-based conductive hydrogels offer sustainable, soft electronic materials. This review details their design, conductivity, and applications in flexible electronics and biointegration.

Keywords:
applicationscelluloseconductive hydrogelsflexible functional materials

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Last Updated: May 28, 2026

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Area of Science:

  • Materials Science
  • Polymer Chemistry
  • Nanotechnology

Background:

  • Growing demand for soft, multifunctional electronic materials driven by AI and wearables.
  • Hydrogels offer softness, stretchability, and biocompatibility for advanced electronics.
  • Cellulose-based conductive hydrogels combine natural polymer sustainability with tunable electrical properties.

Purpose of the Study:

  • To provide a comprehensive review of recent advancements in cellulose-based conductive hydrogels.
  • To systematically summarize design strategies and conductive mechanisms.
  • To discuss structure-property relationships and emerging applications.

Main Methods:

  • Systematic review of literature on cellulose-based conductive hydrogels.
  • Summarization of design strategies: physical/chemical crosslinking, interpenetrating networks.
  • Comparative analysis of conductive mechanisms: ionic, conductive polymers, nanostructures, carbon fillers.

Main Results:

  • Identified key design strategies and conductive mechanisms for cellulose hydrogels.
  • Highlighted trade-offs between conductivity, mechanical properties, and stability.
  • Showcased applications in flexible electronics, energy storage, and bioelectronics.

Conclusions:

  • Cellulose-based conductive hydrogels are promising for sustainable flexible and biointegrated electronics.
  • Further research needed on multifunctional integration, scalable fabrication, and stability.
  • Rational design frameworks are crucial for next-generation sustainable electronic materials.