Center for Advanced Optoelectronic Functional Materials Research, and Key Laboratory of UV-Emitting Materials and Technology of Ministry of Education, Northeast Normal University, 5268 Renmin Street, Changchun 130024, China.
Instrumental Analysis and Research Center, Dalian University of Technology, Panjin 124221, China.
ACS Appl Mater Interfaces. 2020 Mar 18;12(11):13287-13295. doi: 10.1021/acsami.9b21751. Epub 2020 Mar 6.
The development of strain sensors with high sensitivity and stretchability, which can accurately detect different human activities such as subtle physiological signals and large-scale joint motions is essential for disease diagnosis and human health monitoring. However, achieving both high sensitivity and stretchability is still an enormous challenge at the moment, particularly for intrinsically stretchable strain sensors. Herein, utilizing large differences in the conductivity and stretchability of micropatterned Au and SWCNTs, we present an ultrasensitive intrinsically stretchable strain sensor by a one-step photolithography process. Its high sensitivity is inspired from spiders' slit organ and the high stretchability is enlightened from spiders' neural pathway. The skin-like sensor exhibits many superior merits, including ultrahigh sensitivity (gauge factors of 7.1 × 10 to 3.4 × 10), wide detection range (up to 100% strain), excellent durability (1000 cycles), ultralow limit of detection (0.1% strain), fast response (1.3 ms), and minimal feature size (≤100 μm). These fascinating merits allow the strain sensor to precisely detect diverse human activities. This work opens up a feasible path to fabricate highly sensitive and stretchable strain sensors, presenting their promising potential in future personalized healthcare, as electronic skins, and being a portable friendly human-machine interaction system.
具有高灵敏度和拉伸性的应变传感器的发展对于疾病诊断和人体健康监测至关重要,因为它可以准确地检测到不同的人体活动,如微妙的生理信号和大规模的关节运动。然而,目前实现高灵敏度和拉伸性仍然是一个巨大的挑战,特别是对于本征可拉伸应变传感器而言。在此,我们利用微图案化的 Au 和 SWCNTs 在导电性和拉伸性方面的巨大差异,通过一步光刻工艺展示了一种超灵敏的本征可拉伸应变传感器。其高灵敏度灵感来自蜘蛛的狭缝器官,高拉伸性则受到蜘蛛的神经通路的启发。这种类似皮肤的传感器具有许多卓越的优点,包括超高的灵敏度(应变系数为 7.1×10 至 3.4×10)、宽检测范围(高达 100%应变)、出色的耐用性(1000 次循环)、超低检测限(0.1%应变)、快速响应(1.3ms)和最小的特征尺寸(≤100μm)。这些迷人的优点使得应变传感器能够精确地检测各种人体活动。这项工作为制造高灵敏度和拉伸性的应变传感器开辟了一条可行的道路,为未来的个性化医疗、电子皮肤以及便携式友好的人机交互系统展示了其广阔的应用前景。