A Skin‐Inspired Multifunctional Conductive Hydrogel with High Stretchable, Adhesive, Healable, and Decomposable Properties for Highly Sensitive Dual‐Sensing of Temperature and Strain

Author:

Ge Si Jia1,Liu Shi Nian1,Gu Zhong Ze1,Xu Hua1ORCID

Affiliation:

1. State Key Laboratory of Bioelectronics School of Biological Science and Medical Engineering Southeast University Si Pai Lou 2 Nanjing 210096 China

Abstract

AbstractDeveloping smart hydrogels with excellent physicochemical properties and multi‐sensing capabilities for various simulation of human skin's functions still remains a great challenge. Here, based on simple and convenient one‐step covalent cross‐linking method enhanced by dynamic RS‐Ag interactions, a skin‐inspired multifunctional conductive hydrogel with desirable physicochemical properties (including high stretchability, self‐adhesion, self‐healing, decomposition and removability) is developed for highly sensitive dual‐sensing of temperature and strain. Benefiting from the synergistic action of multiple hydrogen bonds, RS‐Ag bonds and S‐S bonds, the gel exhibited a novel thermosensitive mechanism. The prepared hydrogels exhibited extremely high mechanical properties (maximum tensile strength of 0.35 MPa, elongation at break nearly 1800%, compressive stress over 4.43 MPa), excellent self‐healing (96.82% (stress), 88.45% (temperature), 73.89% (mechanical property)), decomposition (the molecular weight after decomposition is below 700) and self‐adhesion (enhanced contact with the material interface). In addition, this conductive hydrogel could also simultaneously achieve highly sensitive temperature‐sensing (TCR: 10.89) and stress‐sensing (GF: 1.469). As a proof‐to‐concept, the hydrogel displayed superior capability for simulation of human skin to perception of touch, pressure and ambient temperature simultaneously, indicating promising applications in the fields of wearable devices, personal health care, and human‐machine interfaces.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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