Zhang Junqiu, Sun Tao, Liu Linpeng, Niu Shichao, Wang Kejun, Song Honglie, Han Qigang, Han Zhiwu, Ren Luquan, Lin Qiao
Key Laboratory of Bionic Engineering, Ministry of Education, Jilin University Changchun 130022 People's Republic of China
Department of Mechanical Engineering, Columbia University 500 West 120th Street New York NY 10027 USA.
RSC Adv. 2019 Jul 23;9(39):22740-22748. doi: 10.1039/c9ra03663f. eCollection 2019 Jul 17.
Recently, there has been tremendous interest in flexible pressure sensors to meet the technological demands of modern society. For practical applications, pressure sensors with high sensitivity at small strains and low detection limits are highly desired. In this paper, inspired by the slit sensillum of the scorpion, a flexible pressure sensor is presented which has regular microcrack arrays and its reversed pattern acts as a tunable contact area of the sensing material microstructures. The template with regular crack arrays generated on the inner surface is fabricated using a solvent-induced swelling method, which provides a simple and economical way to obtain the controllable fabrication of crack arrays without any physical damage to materials. At the same time, the working principle of the bio-inspired pressure sensor is attributed to pressure-dependent variations because of the contact area change between the interlocking polydimethylsiloxane films with the negative and positive patterns of the microcrack arrays. The device shows good performance, with a gauge factor of 27.79 kPa (0-2.4 kPa), a short response/recovery time (111/95 ms), a low detectable pressure limit and excellent reproducibility over 3000 cycles. Practical applications, such as the detection of human motion and touch sensing, are then tested in this work, and the results imply that it should have significant potential applications in numerous fields. Note that the reversed pattern of the slit sensillum of the scorpion is explored to enhance the performance of pressure sensors, thus opening a new route for the fabrication of flexible pressure sensors, even wearable electronics, in a cost-effective and scalable manner.
近年来,为满足现代社会的技术需求,人们对柔性压力传感器产生了浓厚兴趣。在实际应用中,迫切需要在小应变下具有高灵敏度和低检测限的压力传感器。本文受蝎子狭缝感受器的启发,提出了一种具有规则微裂纹阵列的柔性压力传感器,其反向图案充当传感材料微结构的可调接触面积。利用溶剂诱导溶胀法在内表面制备了具有规则裂纹阵列的模板,该方法为获得可控的裂纹阵列制备提供了一种简单且经济的途径,且不会对材料造成任何物理损伤。同时,这种仿生压力传感器的工作原理归因于互锁的聚二甲基硅氧烷薄膜与微裂纹阵列正负图案之间接触面积变化引起的与压力相关的变化。该器件表现出良好的性能,在0 - 2.4 kPa范围内的应变系数为27.79 kPa,响应/恢复时间短(111/95 ms),可检测压力极限低,并且在3000次循环中具有出色的重现性。随后在这项工作中测试了其实际应用,如人体运动检测和触摸传感,结果表明它在众多领域应具有重大的潜在应用。值得注意的是,对蝎子狭缝感受器的反向图案进行了探索,以提高压力传感器的性能,从而为以经济高效且可扩展的方式制造柔性压力传感器甚至可穿戴电子产品开辟了一条新途径。