4.7 Article

Preparation of Hemicellulose Nanoparticle-Containing Ionic Hydrogels with High Strength, Self-Healing, and UV Resistance and Their Applications as Strain Sensors and Asymmetric Pressure Sensors

Journal

BIOMACROMOLECULES
Volume 23, Issue 6, Pages 2272-2279

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.biomac.1c01640

Keywords

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Funding

  1. National Natural Science Foundation of China [61674152, 51902309]
  2. National Key Research and Development Program of China [2017YFB0307900]
  3. Natural Science Foundation of Fujian Province of China [2017J01130, 2018J05097]
  4. Canada Research Chairs program of the Government of Canada

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This study utilized tannic acid-modified hemicellulose nanoparticles and Fe3+ to prepare PAA/TA@HC/Fe3+ hydrogels, exhibiting fast gelation, superior mechanical properties, and asymmetric adhesion capabilities.
Smart functional fillers can significantly enhance the comprehensive properties of ionic hydrogels, such as their mechanical properties, which are key features of hydrogels in wearable sensor applications. As a plant-derived natural polymer, hemicellulose can serve as smart functional fillers. In this study, tannic acid-modified hemicellulose nanoparticles (TA@HC) and Fe3+ were used in the preparation of PAA/TA@HC/Fe3+ hydrogels. The addition of TA@HC and Fe3+ in the sodium persulfate (SPS) and acrylic acid (AA) polymerization system resulted in a fast gelation process that was completed within a short time (as short as 30 s) at room temperature. The catechol-rich TA and Fe-3(+) system allows for quick activation of SPS to produce free radicals, generating abundant hydroxyl groups in a short period of time, which was responsible for the fast gelation. Furthermore, due to the TA@HC effect and the dynamic catechol (TA)-Fe3+ redox system, the PAAJTA@HC/Fe3+ hydrogel exhibited excellent mechanical properties with an exceptionally high strain (as high as 5600%), adhesiveness, rapid and efficient self-healing ability, and reproducible self-adhesion onto various substrates. More importantly, asymmetric adhesive PAA/TA@HC/Fe3+ hydrogels were prepared by selective Fe3+ coating of the upper hydrogel surface to render the top surface nonadhesive so that the same hydrogel with different adhesiveness between the upper and bottom surfaces was obtained. The asymmetric adhesive hydrogel design permits the adhesive side to fit comfortably to the skin and the nonadhesive side showing anti-interference against various different pollutant materials, accurately serving as a pressure sensor.

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