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In Situ Structural Densification of Hydrogel Network and Its Interface with Electrodes for High-Performance Multimodal Artificial Skin

  • Luqi Luo
  • , Zixuan Wu
  • , Qiongling Ding
  • , Hao Wang
  • , Yibing Luo
  • , Jiahao Yu
  • , Hui Guo
  • , Kai Tao
  • , Sheng Zhang
  • , Fengwei Huo
  • , Jin Wu
  • Sun Yat-Sen University
  • State Key Laboratory of Transducer Technology
  • Wuyi University
  • Northwestern Polytechnical University Xian
  • Sichuan University
  • Xiamen University
  • Nanjing Tech University
  • South China University of Technology

Research output: Contribution to journalArticlepeer-review

93 Scopus citations

Abstract

The multisensory responsiveness of hydrogels positions them as promising candidates for artificial skin, whereas the mismatch of modulus between soft hydrogels and hard electrodes as well as the poor adhesion and conductance at the interface greatly impairs the stability of electronics devices. Herein, we propose an in situ postprocessing approach utilizing electrochemical reactions between metals (Zn, etc.) and hydrogels to synergistically achieve strong adhesion of the hydrogel-electrode interface, low interfacial impedance, and local strain isolation due to the structural densification of the hydrogel network. The mechanism is that Zn electrochemically oxidizes to Zn2+ and injects into the hydrogel, gradually forming a mechanically interlocked structure, Zn2+-polymer dual-helix structural nodes, and a high-modulus ZnO from the surface to the interior. Compared to untreated samples, the treated sample displays 8.7 times increased interfacial adhesion energy between the hydrogel and electrode (87 J/m2), 95% decreased interfacial impedance (218.8 Ω), and a high-strain isolation efficiency (ϵtotalisolation > 400). Akin to human skin, the prepared sensor demonstrates multimodal sensing capabilities, encompassing highly sensitive strain perception and simultaneous perception of temperature, humidity, and oxygen content unaffected by strain interference. This easy on-chip preparation of hydrogel-based multimodal sensor array shows great potential for health and environment monitoring as artificial skin.

Original languageEnglish
Pages (from-to)15754-15768
Number of pages15
JournalACS Nano
Volume18
Issue number24
DOIs
StatePublished - 18 Jun 2024

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • flexible hydrogel sensors
  • in situ electrochemical treatment
  • multimodal artificial skin
  • spatially controllable adhesion
  • strain isolation

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