Fibrous Conductive Metallogels with Hybrid Electron/Ion Networks for Boosted Extreme Sensitivity and High Linearity Strain Sensor

Author:

Li Jifeng12,Wan Kening3,Zhu Tianyi4,Zheng Yong5,Chen Ziyin2,Feng Qichun1ORCID,Du Zhaofang1

Affiliation:

1. Anhui Province Joint Key Laboratory of Cold Insulation Fiber and Clothing School of Materials and Chemistry Anhui Agricultural University Hefei 230036 P. R. China

2. Institute of Intelligent Machines Hefei Institutes of Physical Science Chinese Academy of Sciences Hefei 230031 P. R. China

3. School of Engineering and Materials Science Queen Mary University of London Mile End Road London E1 4NS UK

4. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials College of Materials Science and Engineering Donghua University Shanghai 201620 P. R. China

5. Key Laboratory of Inorganic Nonmetallic Crystalline and Energy Conversion Materials College of Materials and Chemical Engineering China Three Gorges University Yichang 443002 P. R. China

Abstract

AbstractFibrous strain sensing materials with both high sensitivity and high linearity are of significant importance for wearable sensors, yet they still face great challenges. Herein, a photo‐spun reaction encapsulation strategy is proposed for the continuous fabrication of fibrous strain sensor materials (AMGF) with a core‐sheath structure. Metallogels (MOGs) formed by bacterial cellulose (BC) nanofibers and Ag nanoparticles (AgNPs), and thermoplastic elastomers (TPE) are employed as the core and sheath, respectively. The in situ ultraviolet light reduction of Ag+ ensured AgNPs to maintain the interconnections between the BC nanofibers and form electron conductive networks (0.31 S m−1). Under applied strain, the BC nanofibers experience separation, bringing AMGF a high sensitivity (gauge factor 4.36). The concentration of free ions in the MOGs uniformly varies with applied deformation, endowing AMGF with high linearity and a goodness‐of‐fit of 0.98. The sheath TPE provided AMGF sensor with stable working life (>10 000 s). Furthermore, the AMGF sensors are demonstrated to monitor complex deformations of the dummy joints in real‐time as a wearable sensor. Therefore, the fibrous hybrid conductive network fibers fabricated via the photo‐spun reaction encapsulation strategy provide a new route for addressing the challenge of achieving both high sensitivity and high linearity.

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Organic Chemistry

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