School of Materials Science and Engineering, Key Lab of Guangdong Province for High Property and Functional Polymer Materials, South China University of Technology, Guangzhou 510640, China.
ACS Appl Mater Interfaces. 2020 Sep 30;12(39):44360-44370. doi: 10.1021/acsami.0c13442. Epub 2020 Sep 22.
A lot of attention has recently been focused on wearable strain sensors because of their promising applications in the rising areas of human motion detection, health monitoring, and smart human-machine interaction. However, the design and fabrication of self-healable strain sensors with superior overall properties including stretchability, sensitivity, response ability, stability, and durability is still a huge challenge. Herein, we report an innovative self-healable strain sensor with exceptional overall performance constructed with three-dimensional binary-conductive-network silver nanowire-coated thiolated graphene foam (AgNWs@TGF) and room-temperature self-healing functionalized polyurethane (FPU) elastomer. Taking advantage of the good ductility and continuity of the AgNWs@TGF binary structure and the excellent resilience of the FPU, the strain sensor exhibits good stretchability (up to 60% strain), high sensitivity [gauge factor (GF) of 11.8 at 60% strain and detection limit of 0.1% strain], fast response ability (response/recovery time of 40/84 ms), and exceptional durability for 800 cycles of fatigue test. Besides, the highly flexible polydimethylsiloxane chains, strong intermolecular hydrogen bonding, and dynamic exchange reaction of aromatic disulfides ensure the sensor excellent recovery property of electrical conductivity, and the GF of sensor after self-healed only increases slightly. More importantly, the sensor is successfully applied for detecting a variety of human motions including pulse beats, voice recognitions, various joint movements, and handwriting. The method for preparing room-temperature self-healable strain sensor is facile, scalable, and cost-effective. The finds provide a new perspective on fabricating new-generation high-performance and functional strain sensors for health monitoring, wearable electronics, and intelligent robots.
最近,人们对可穿戴应变传感器给予了大量关注,因为它们在人体运动检测、健康监测和智能人机交互等新兴领域具有广阔的应用前景。然而,设计和制造具有优异综合性能的自修复应变传感器仍然是一个巨大的挑战,这些性能包括拉伸性、灵敏度、响应能力、稳定性和耐用性。在此,我们报告了一种具有卓越综合性能的创新型自修复应变传感器,该传感器由三维二元导电网络银纳米线涂覆的巯基化石墨烯泡沫(AgNWs@TGF)和室温自修复功能化聚氨酯(FPU)弹性体制成。利用 AgNWs@TGF 二元结构的良好延展性和连续性以及 FPU 的优异弹性,该应变传感器表现出良好的拉伸性(最大应变可达 60%)、高灵敏度[在 60%应变时的应变系数(GF)为 11.8,检测限为 0.1%应变]、快速响应能力(响应/恢复时间分别为 40/84 ms)和出色的耐用性,经过 800 次疲劳测试循环后仍保持稳定。此外,高度灵活的聚二甲基硅氧烷链、强分子间氢键和芳基二硫键的动态交换反应确保了传感器具有优异的电导率恢复性能,自修复后传感器的 GF 仅略有增加。更重要的是,该传感器成功应用于检测各种人体运动,包括脉搏跳动、语音识别、各种关节运动和手写。制备室温自修复应变传感器的方法简便、可扩展且具有成本效益。该研究为用于健康监测、可穿戴电子设备和智能机器人的新一代高性能和功能应变传感器的制造提供了新的视角。