Carbon Nanotube-Encapsulated Liquid Metal Hydrogel Fibers: An Integrated Conductive, Stretchable, and Adhesive Platform for Multifunctional Sensing
Yue Wang, Mengting Wang, Yunling Dai, Mingdong Li, Baoxiu Wang, Kun Qi, Seeram Ramakrishna, Kangkang Ou
Shanghai University of Engineering Science Advanced Micro-Fabrication Equipment (China) Zhongyuan University of Technology Textile Research Institute
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Developing multifunctional conductive hydrogel fibers is a growing trend and a challenge for flexible electronics. Here, a promising strategy is reported to develop multifunctional conductive hydrogel fibers for multifunctional sensing. The multifunctional conductive hydrogel fibers are designed and fabricated by in situ copolymerization of carboxyl-group-functionalized carbon nanotube (CNT)-encapsulated liquid metal (LM) and polyacrylamide/sodium alginate (PAM/SA) hydrogel. The resulting PAM/SA/CNTs/LM (PSCL) hydrogel fibers present conductive, self-healing, adhesive, and antifreezing properties. CNT-encapsulated LM endows the PSCL hydrogel fiber with a conducting network with a conductivity of 0.51 S m –1 . PSCL exhibits high stretchability, excellent mechanical properties, good adhesion strength, and a self-healing ability. Based on its multifunctional properties, the PSCL hydrogel fiber strain sensor shows enhanced sensitivity, wide detection range, and strain cycle stability, enabling it to monitor a wide range of human motions, from gross joint movements to subtle physiological activities, such as finger and cheek movements and detection of speech-related physiological signals. The conductivity enables PSCL as a stretchable electrode to construct PSCL-TENG that can drive small devices, such as calculators. Furthermore, the wireless sensing system constructed using freeze-resistant moisturizing PAM/SA/CNTs/LM/ethylene glycol (PSCLE) hydrogel fibers successfully displays the collected human movement signals in real time on a mobile phone. This study provides new insights for developing multifunctional hydrogel fibers for smart wearable sensing devices.
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工程Advanced Sensor and Energy Harvesting Materials
Nanomaterials and Printing Technologies · Polydiacetylene-based materials and applications
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