Sun Hao, Fang Xudong, Fang Ziyan, Zhao Libo, Tian Bian, Verma Prateek, Maeda Ryutaro, Jiang Zhuangde
State Key Laboratory for Manufacturing Systems Engineering, International Joint Laboratory for Micro/Nano Manufacturing and Measurement Technologies, Collaborative Innovation Center of Suzhou Nano Science and Technology, Xi'an Jiaotong University, Xi'an, 710049 China.
School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an, 710049 China.
Microsyst Nanoeng. 2022 Sep 29;8:111. doi: 10.1038/s41378-022-00419-6. eCollection 2022.
Flexible strain sensors are promising candidates for intelligent wearable devices. Among previous studies, although crack-based sensors have attracted a lot of attention due to their ultrahigh sensitivity, large strain usually causes fractures in the conductive paths. Because of the unstable crack structure, the tradeoff between sensitivity and workable strain range is still a challenge. As carbon nanotubes (CNTs) and silver nanowires (AgNWs) can form a strong interface with the thermoplastic substrate and strengthen the conductive network by capillary force during water evaporation, CNTs and AgNWs were deposited on electrospun TPU fiber mats via vacuum-assisted filtration in this work. The prestretching treatment constructed a microcrack structure that endowed the sensor with the combined characteristics of a wide working range (0171% strain), ultrahigh sensitivity (a gauge factor of 691 within 0102% strain, 2 × 10 within 102135% strain, and 11 × 10 within 135171% strain), a fast response time (65 ms), small hysteresis, and superior durability (2000 cycles). Subsequently, the sensing mechanism of the sensor was studied. Distributed microcrack propagation based on the "island-bridge" structure was explained in detail, and its influence on the strain-sensing behavior of the sensor was analyzed. Finally, the sensor was assembled to monitor various vibration signals and human motions, demonstrating its potential applications in the fields of electronic skin and human health monitoring.
柔性应变传感器是智能可穿戴设备的理想候选者。在以往的研究中,基于裂纹的传感器尽管因其超高灵敏度而备受关注,但大应变通常会导致导电路径断裂。由于裂纹结构不稳定,灵敏度与可行应变范围之间的权衡仍是一个挑战。由于碳纳米管(CNTs)和银纳米线(AgNWs)可与热塑性基材形成强界面,并在水蒸发过程中通过毛细力强化导电网络,因此在本工作中,通过真空辅助过滤将碳纳米管和银纳米线沉积在静电纺丝TPU纤维垫上。预拉伸处理构建了一种微裂纹结构,赋予传感器宽工作范围(0171%应变)、超高灵敏度(在0102%应变范围内应变系数为691,在102135%应变范围内约为2×10,在135171%应变范围内为11×10)、快速响应时间(约65毫秒)、小滞后和卓越耐久性(2000次循环)等综合特性。随后,研究了该传感器的传感机制。详细解释了基于“岛桥”结构的分布式微裂纹扩展,并分析了其对传感器应变传感行为的影响。最后,将该传感器组装用于监测各种振动信号和人体运动,证明了其在电子皮肤和人体健康监测领域的潜在应用。