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February 19, 2026Macromolecular Rapid Communications0 citationsOpen Access

Transparent Ionic Skin: Minimal EMIMCl Enhances Nanocellulose Hydrogel Conductivity for Superior Wearable Sensing

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XHXinhaoran HuCSChenyu SunYHYang Hu

Key Points

  • The aim is to improve the conductivity of cellulose-based hydrogels using an ionic liquid for wearable sensors.
  • Formulated a TOCN-ionic liquid hydrogel by mixing TOCN dispersion with [EMIM]Cl and Ca2+ cross-linking.
  • Varying concentrations of [EMIM]Cl (0-3 wt.%) to assess effects on conductivity and sensor performance.
  • Measured transparency, sensitivity, and response/recovery times for the developed ionic skin.
  • Conductivity increased from 9.43 × 10−5 to 4.13 × 10−4 S cm−1 with increasing [EMIM]Cl content.
  • The skin showed a high sensitivity of 2.11 kPa−1 and rapid response/recovery times of less than 50 ms.
  • It demonstrated cyclic stability exceeding 5000 cycles and effective monitoring of human joint movements.

Abstract

ABSTRACT Growing focus on health and quality of life is driving increasing demand for skin‐like wearable sensors in human motion monitoring and healthcare. Unlike traditional e‐skin, ionic skin utilizes a polymer network scaffold with mobile ions, effectively overcoming the issue of poor dispersion of conductive fillers in polymer matrices. As an ionic liquid with facile synthesis and low cost, 1‐ethyl‐3‐methylimidazolium chloride (EMIMCl) forms strong interactions with both polymers and water molecules. Cellulose is a natural polymeric material with advantages such as low cost, environmental friendliness, and renewability. 2,2,6,6‐Tetramethylpiperidinyl‐1‐oxyl (TEMPO)‐oxidized cellulose nanofibrils (TOCNs) exhibit excellent biocompatibility. In this work, the TOCN‐EMIMCl ionic hydrogel was formed by mixing a TOCN dispersion with EMIMCl ionic liquid, followed by Ca 2 + cross‐linking. By adjusting the EMIMCl content from 0 to 3 wt.%, the conductivity of the TOCN‐EMIMCl hydrogel increased from 9.43 × 10 −5 to 4.13 × 10 −4 S cm −1 . The obtained ionic skin exhibits high transparency, with a sensitivity of 2.11 kPa −1 , rapid response/recovery times ( 5000 cycles). Stable and distinguishable signal outputs have been achieved for human joint movements (wrist, elbow, and knee), demonstrating significant potential in flexible wearable sensors and health monitoring applications.

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Cite This Study

Hu et al. (2026) studied this question.

synapsesocial.com/papers/6996a7c3ecb39a600b3edcb1https://doi.org/10.1002/marc.70238
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