Wan Yu, Zhang Libing, Wu Ting, Tang Chengli, Song Haijun, Cao Qianqian
School of Mechanical Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China.
College of Information Science and Engineering, Jiaxing University, Jiaxing 314001, China.
J Colloid Interface Sci. 2024 Sep;669:688-698. doi: 10.1016/j.jcis.2024.05.039. Epub 2024 May 8.
Conductive hydrogels with high performance and frost resistance are essential for flexible electronics, electronic skin, and soft robots. Nonetheless, the preparation of hydrogel-based flexible strain sensors with rapid response, wide strain detection range, and high sensitivity remains a considerable challenge. Furthermore, the inevitable freezing and evaporation of water in sub-zero temperatures and dry environments lead to the loss of flexibility and conductivity in hydrogels, which seriously limits their practical application. In this work, ionic liquids (ILs) and MXene are introduced into gelatin/polyacrylamide (PAM) precursor solution, and a PAM/gelatin/ILs/MXene/glycerol (PGIMG) hydrogel-based flexible strain sensor with MXene co-ILs ion-electron composite conductive network is prepared by combining the electrohydrodynamic (EHD) printing method and in-situ photopolymerization. The introduction of ILs provides an ionic conductive channel for the hydrogel. The introduction of MXene nanosheets forms an interpenetrating network with gelatin and PAM, which not only provides a conductive channel, but also improves the mechanical and sensing properties of the hydrogel-based flexible strain sensor. The prepared PGIMG hydrogel with the MXene co-ILs ion-electron composite conductive network demonstrates a tensile strength of 0.21 MPa at 602.82 % strain, the conductivity of 1.636 × 10 S/cm, high sensitivity (Gauge Factor, GF = 4.17), a wide strain detection range (1-600 %), and the response/recovery times (73 ms and 74 ms). In addition, glycerol endows the hydrogel with excellent freezing (-60 °C) and water retention properties. The application of the hydrogel-based flexible strain sensor in the field of human motion detection and information transmission shows the great potential of wearable devices, electronic skin, and information encryption transmission.
具有高性能和抗冻性的导电水凝胶对于柔性电子器件、电子皮肤和软体机器人至关重要。尽管如此,制备具有快速响应、宽应变检测范围和高灵敏度的水凝胶基柔性应变传感器仍然是一项巨大的挑战。此外,在零下温度和干燥环境中,水不可避免的冻结和蒸发会导致水凝胶失去柔韧性和导电性,这严重限制了它们的实际应用。在这项工作中,将离子液体(ILs)和MXene引入明胶/聚丙烯酰胺(PAM)前驱体溶液中,并通过结合电流体动力学(EHD)打印方法和原位光聚合制备了具有MXene共离子液体离子-电子复合导电网络的PAM/明胶/ILs/MXene/甘油(PGIMG)水凝胶基柔性应变传感器。离子液体的引入为水凝胶提供了离子导电通道。MXene纳米片的引入与明胶和PAM形成了互穿网络,这不仅提供了导电通道,还改善了水凝胶基柔性应变传感器的机械和传感性能。制备的具有MXene共离子液体离子-电子复合导电网络的PGIMG水凝胶在602.82%应变下的拉伸强度为0.21 MPa,电导率为1.636×10 S/cm,具有高灵敏度(应变片系数,GF = 4.17)、宽应变检测范围(1-600%)以及响应/恢复时间(73 ms和74 ms)。此外,甘油赋予水凝胶优异的抗冻性(-60°C)和保水性能。水凝胶基柔性应变传感器在人体运动检测和信息传输领域的应用展示了可穿戴设备、电子皮肤和信息加密传输的巨大潜力。