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作为多功能传感器的防冻、离子导电、透明和抗干燥的羧甲基壳聚糖自修复水凝胶。

Antifreezing, Ionically Conductive, Transparent, and Antidrying Carboxymethyl Chitosan Self-Healing Hydrogels as Multifunctional Sensors.

机构信息

Key Laboratory for Biobased Materials and Energy of Ministry of Education, College of Materials and Energy, South China Agricultural University, 483 Wushan Road, Guangzhou 510642, China.

Guangdong Laboratory for Lingnan Modern Agriculture, 483 Wushan Road, Guangzhou 510642, China.

出版信息

ACS Biomater Sci Eng. 2022 Aug 8;8(8):3633-3643. doi: 10.1021/acsbiomaterials.2c00496. Epub 2022 Jul 25.

Abstract

Through a simple strategy of immersion in a mixed solution of water/ethylene glycol (EG)/lithium chloride (LiCl), self-healing carboxymethyl chitosan (CA) hydrogels, that is, CA/-vinylpyrrolidone-EG-Li hydrogels (CEH) with an ultra-low-temperature freezing resistance below -70 °C were fabricated. The introduction of electrolyte ions and small-molecule polyol also made these hydrogels highly conductive (0.8 S m) and imparted antidrying property to them, showing stable and reversible sensitivity to finger-wrist bending as well as 150 cycles of stretching. Such hydrogels also presented highly efficient self-healing ability, with a stress-strain healing efficiency of over 90%. Furthermore, the CEH-based sensors maintained a stable sensing performance over a wide range of temperatures below the freezing point (from -10 to -70 °C) and exhibited stable sensitivity to temperatures with fast response and no significant hysteresis. The present work is expected to provide a simple and sustainable route for the preparation of multifunctional antifreezing conductive hydrogels based on CA, leading to a wide range of potential applications in soft sensor devices.

摘要

通过简单的浸没策略,将水/乙二醇(EG)/氯化锂(LiCl)混合溶液中,制备了具有超低温抗冻性(低于-70°C)的自修复羧甲基壳聚糖(CA)水凝胶,即 CA/-乙烯基吡咯烷酮-EG-Li 水凝胶(CEH)。电解质离子和小分子多元醇的引入使这些水凝胶具有高导电性(0.8 S m)和抗干燥性,对指腕弯曲具有稳定且可重复的敏感性,并且可拉伸 150 次。这些水凝胶还具有高效的自修复能力,其应力-应变修复效率超过 90%。此外,基于 CEH 的传感器在冰点以下的较宽温度范围内(-10 至-70°C)保持稳定的传感性能,对温度表现出稳定的敏感性,响应速度快,无明显滞后。本工作有望为基于 CA 的多功能抗冻导电水凝胶的制备提供一种简单可持续的途径,为软传感器设备的广泛应用提供了可能。

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