Tough ion-electron conductive hydrogels with multi-crosslinked network for strain sensors

IF 4.1 2区 化学 Q2 POLYMER SCIENCE Polymer Pub Date : 2025-01-14 DOI:10.1016/j.polymer.2025.128060
Jia Zhao, Haiyan Zhu, Huiyu Bai, Weifu Dong
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引用次数: 0

Abstract

Conductive hydrogels, due to their flexibility and conductivity, offer potential for wearable bioelectronics. Enhanced conductivity in these hydrogels stems from the conducting network of reactive particles, notably polypyrrole (PPy). Nevertheless, the hydrophobicity, brittleness, and opacity of conjugated π PPy hinder its application in conducting hydrogels for flexible, wearable, and transparent electronics. Herein, PPy-decorated cellulose nanocrystals (CNC-PPy) hydrophilic complexes are initially synthesized by in situ polymerization of pyrrole (Py) onto CNC. Subsequently, an ion-electron conductive PCPF hydrogel with a multi-crosslinked network structure is developed using polyvinyl alcohol bearing styrylpyridinium group (PVA-SbQ) and CNC-PPy under UV irradiation and ammonium persulfate (APS)-induced gelation, followed by ferric chloride (FeCl3) immersion. APS both initiates polymerization and disrupts PPy π-π stacking, enhancing mechanical properties and transparency. The unique synergy effect of CNC-PPy and FeCl3 contribute to superior mechanical (tensile strength of 370 ± 17 KPa and elongation at break of 702 ± 18 %), electrical (4.50 mS.cm-1) and strain sensitivity (GF = 1.43). Furthermore, it effectively monitors large deformations, like joint bending, and small deformations such as pulse. Thus, our approach offers a promising strategy for developing PVA-based hydrogels with exceptional mechanical and electrical properties while maintaining transparency, rendering them ideal for flexible sensors.

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来源期刊
Polymer
Polymer 化学-高分子科学
CiteScore
7.90
自引率
8.70%
发文量
959
审稿时长
32 days
期刊介绍: Polymer is an interdisciplinary journal dedicated to publishing innovative and significant advances in Polymer Physics, Chemistry and Technology. We welcome submissions on polymer hybrids, nanocomposites, characterisation and self-assembly. Polymer also publishes work on the technological application of polymers in energy and optoelectronics. The main scope is covered but not limited to the following core areas: Polymer Materials Nanocomposites and hybrid nanomaterials Polymer blends, films, fibres, networks and porous materials Physical Characterization Characterisation, modelling and simulation* of molecular and materials properties in bulk, solution, and thin films Polymer Engineering Advanced multiscale processing methods Polymer Synthesis, Modification and Self-assembly Including designer polymer architectures, mechanisms and kinetics, and supramolecular polymerization Technological Applications Polymers for energy generation and storage Polymer membranes for separation technology Polymers for opto- and microelectronics.
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