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Thermal and NIR controlled flexible switching devices using a smart conductive composite hydrogel approach

  • Yanqin Wang
  • , Jingwen Liao
  • , Xiaogang Wu
  • , Fengbo Zhu
  • , Yang Liu
  • , Yi Xian Qin
  • , Weiyi Chen
  • , Qiang Zheng
  • Taiyuan University of Technology
  • Zhejiang University

Research output: Contribution to journalArticlepeer-review

32 Scopus citations

Abstract

Flexible switching devices with multi-stimulus responsive abilities have shown promising applications as smart materials in the tissue regeneration fields. Herein, a composite hydrogel-based flexible switch system was successfully designed by integrating the nano-sized conductive CNC@PPy (cellulose nanocrystal decorated with polypyrrole (PPy)) and CNC@PDA (cellulose nanocrystal decorated with polydopamine (PDA)) composite particles into the thermal sensitive poly N-isopropyl acrylamide (PNIPAM) hydrogels. The resulting composite hydrogels exhibited enhanced elastic modulus (∼29.5 kPa), superior conductivity (∼1.1 S/m), self-healing, and thermo- and NIR-responsive abilities. Particularly, the incorporated CNC@PDA and CNC@PPy particles within the hydrogel matrix by hydrogen bonds could not only provide a more continuous transporting path for electrons, but also further improve the photothermal conversion efficiency of the composite hydrogel system, in which the temperature increased by 47.6 °C within 10 min under NIR irradiation, and high NIR light-responsive sensitivity with a volume change of 30% within 2 min. Moreover, these composite hydrogels were developed to serve thermo- and NIR light-responsive switchers effectively, which showed excellent stimulus-responsive sensitivities. In all, this work provided a new strategy for designing the multi-stimulus responsive smart hydrogels, which demonstrated excellent potential to serve as remotely controllable switch devices in biomaterials and tissue regeneration.

Original languageEnglish
Article number109371
JournalComposites Science and Technology
Volume222
DOIs
StatePublished - May 3 2022

Keywords

  • Conductive hydrogel
  • Flexible switch device
  • NIR light-responsive
  • Thermo-responsive

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