A Pressure‐Tolerant Composite Hydrogel for Wide‐Range, High‐Sensitivity Dual‐Mode Piezoresistive‐Piezoionic Pressure Sensing

ABSTRACT Single‐mechanism hydrogel sensors struggle to simultaneously recognize static/dynamic pressure, map spatial patterns, and decode complex signals, while integrating dual‐mode (e.g., piezoresistive/piezoionic) sensing, mechanical robustness, and environmental resilience remains challenging. Herein, we develop a multifunctional interpenetrating polymer network hydrogel, p(AM‐co‐AA)/chitosan (CS), reinforced with lignin nanoparticles and a ternary supramolecular ionic liquid. Fabricated at room temperature via redox‐initiated polymerization and dynamic imine crosslinking, the hydrogel features synergistic hydrogen bonding and metal‐ligand coordination. This architecture delivers 14.8 MPa compressive strength, autonomous self‐healing (<8 h), strong adhesion (249.3 kPa), anti‐freezing stability (−65°C), excellent moisture retention, high compressive sensitivity ( S max = 19.91 kPa − 1 ), an ultrabroad pressure detection range (100 Pa to 10 MPa), and a pronounced piezoionic response. The sensor enables real‐time handwriting recognition, secure Morse code transmission, and high‐resolution spatial mapping via flexible arrays. This scalable strategy advances robust hydrogel e‐skins for complex mechanical signal perception across diverse environments.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-10-07
DOI
https://doi.org/10.1002/adfm.78839
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
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article

A Pressure‐Tolerant Composite Hydrogel for Wide‐Range, High‐Sensitivity Dual‐Mode Piezoresistive‐Piezoionic Pressure Sensing

Fang Wang, Yimao Wu, Ruolin Zhai, Wen Li et al.
Advanced Functional Materials
Advanced Sensor and Energy Harvesting Materials
article

A Pressure‐Tolerant Composite Hydrogel for Wide‐Range, High‐Sensitivity Dual‐Mode Piezoresistive‐Piezoionic Pressure Sensing

Fang Wang, Yimao Wu, Ruolin Zhai, Wen Li, Jiaqi Liu
article en

Abstract

ABSTRACT Single‐mechanism hydrogel sensors struggle to simultaneously recognize static/dynamic pressure, map spatial patterns, and decode complex signals, while integrating dual‐mode (e.g., piezoresistive/piezoionic) sensing, mechanical robustness, and environmental resilience remains challenging. Herein, we develop a multifunctional interpenetrating polymer network hydrogel, p(AM‐co‐AA)/chitosan (CS), reinforced with lignin nanoparticles and a ternary supramolecular ionic liquid. Fabricated at room temperature via redox‐initiated polymerization and dynamic imine crosslinking, the hydrogel features synergistic hydrogen bonding and metal‐ligand coordination. This architecture delivers 14.8 MPa compressive strength, autonomous self‐healing (<8 h), strong adhesion (249.3 kPa), anti‐freezing stability (−65°C), excellent moisture retention, high compressive sensitivity ( S max = 19.91 kPa − 1 ), an ultrabroad pressure detection range (100 Pa to 10 MPa), and a pronounced piezoionic response. The sensor enables real‐time handwriting recognition, secure Morse code transmission, and high‐resolution spatial mapping via flexible arrays. This scalable strategy advances robust hydrogel e‐skins for complex mechanical signal perception across diverse environments.

Advanced Functional Materials
Nanjing Forestry University (CN)
Openalex Percentile: Top 23%
Advanced Sensor and Energy Harvesting Materials
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