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Highly stretchable anti-freeze hydrogel based on aloe polysaccharides with high ionic conductivity for multifunctional wearable sensors. | LitMetric

Highly stretchable anti-freeze hydrogel based on aloe polysaccharides with high ionic conductivity for multifunctional wearable sensors.

Int J Biol Macromol

Key Laboratory of New Processing Technology for Nonferrous Metal & Materials, Ministry of Education, Guangxi Key Laboratory of Optical and Electronic Materials and Devices, Guilin University of Technology, Guilin 541004, China. Electronic address:

Published: January 2024

AI Article Synopsis

  • - The study addresses the limitations of current conductive hydrogels, such as non-degradability and performance at low temperatures, by introducing a new bio-based hydrogel made from aloe polysaccharides and polyvinyl alcohol.
  • - This hydrogel was crosslinked using borax in a glycerol-water system, resulting in a strong, tough material that can stretch up to 300% and detects deformations with high sensitivity.
  • - Additionally, the aloe-polysaccharide hydrogel functions effectively as a wearable sensor, capable of measuring humidity, responding quickly to stimuli, and sensing temperature variations while also tracking human breathing.

Article Abstract

Conductive hydrogels have limitations such as non-degradability, loss of electrical conductivity at sub-zero temperatures, and single functionality, which limit their applicability as materials for wearable sensors. To overcome these limitations, this study proposes a bio-based hydrogel using aloe polysaccharides as the matrix and degradable polyvinyl alcohol as a reinforcing material. The hydrogel was crosslinked with borax in a glycerol-water binary solvent system, producing good toughness and compressive strength. Furthermore, the hydrogel was developed as a sensor that could detect both small and large deformations with a low detection limit of 1 % and high stretchability of up to 300 %. Moreover, the sensor exhibited excellent frost resistance at temperatures above -50 °C, and the gauge factor of the hydrogel was 2.86 at 20 °C and 2.12 at -20 °C. The Aloe-polysaccharide-based conductive hydrogels also functioned effectively as a wearable sensor; it detected a wide range of humidities (0-98 % relative humidity) and exhibited fast response and recovery times (1.1 and 0.9 s) while detecting normal human breathing. The polysaccharide hydrogel was also temperature sensitive (1.737 % °C) and allowed for information sensing during handwriting.

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Source
http://dx.doi.org/10.1016/j.ijbiomac.2023.127931DOI Listing

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