Key Laboratory of Bionic Engineering, Ministry of Education, Jilin University, Changchun, 130022, China.
Department of Materials Science and Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
ACS Appl Mater Interfaces. 2021 Jan 13;13(1):1967-1978. doi: 10.1021/acsami.0c18818. Epub 2020 Dec 29.
There is currently a growing demand for flexible strain sensors with high performance and water repellency for various applications such as human motion monitoring, sweat or humidity detection, and certain underwater tests. Among these strain sensors, paper-based ones have attracted increasing attention because they coincide with the future development trend of environment-friendly electronic products. However, paper-based electronics are easy to fail when they encounter water and are thus unable to be applied to humid or underwater circumstances. Herein, based on a strategy of coupling bionics inspired by lotus leaf and scorpion, which exhibit superhydrophobic characteristics and ultrasensitive vibration-sensing capacity, respectively, a paper-based strain sensor with high sensitivity and water repellency is successfully fabricated. As a result, the strain sensor exhibits a gauge factor of 263.34, a high strain resolution (0.098%), a fast response time (78 ms), excellent stability over 12,000 cycles, and a water contact angle of 164°. Owing to the bioinspired structures and function mechanisms, the paper-based strain sensor is suitable to not only serve as regular wearable electronics to monitor human motions in real-time but also to detect subtle underwater vibrations, demonstrating its great potential for numerous applications like wearable electronics, water environmental protection, and underwater robots.
目前,人们对具有高性能和防水性的柔性应变传感器的需求日益增长,这些传感器可应用于人体运动监测、汗液或湿度检测以及某些水下测试等各种领域。在这些应变传感器中,纸基应变传感器因其符合环保电子产品的未来发展趋势而受到越来越多的关注。然而,纸基电子产品遇到水时容易失效,因此无法应用于潮湿或水下环境。在此,受荷叶和蝎子启发,分别采用超疏水特性和超灵敏振动传感能力的仿生耦合策略,成功制备了一种具有高灵敏度和防水性的纸基应变传感器。结果表明,该应变传感器的应变系数为 263.34,应变分辨率高(0.098%),响应时间快(78ms),在 12000 次循环后仍保持良好的稳定性,且水接触角为 164°。由于采用了仿生结构和功能机制,这种纸基应变传感器不仅适合作为常规可穿戴电子产品来实时监测人体运动,还可以检测细微的水下振动,在可穿戴电子设备、水环境保护和水下机器人等众多应用领域具有巨大的应用潜力。