Advancement of sensing systems, soft robotics, and point-of-care testing requires the development of highly efficient, scalable, and cost-effective physical sensors with competitive and attractive features such as high sensitivity, reliability, and preferably reversible sensing behaviors. This study reports a highly sensitive and reliable piezoresistive strain sensor fabricated by one-step carbonization of the MoS-coated polyimide film to obtain MoS-decorated laser-induced graphene. The resulting three-dimensional porous graphene nanoflakes decorated with MoS exhibit stable electrical properties yielding a reliable output for longer strain/release cycles. The sensor demonstrates high sensitivity (i.e., gauge factor, GF ≈1242), is hysteresis-free (∼2.75%), and has a wide working range (up to 37.5%), ultralow detection limit (0.025%), fast relaxation time (∼0.17 s), and a highly stable and reproducible response over multiple test cycles (>12 000) with excellent switching response. Owing to the outstanding performances of the sensor, it is possible to successfully detect various subtle movements ranging from phonation, eye-blinking, and wrist pulse to large human-motion-induced deformations.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1021/acsami.9b04915 | DOI Listing |
ACS Appl Mater Interfaces
June 2019
Department of Electronic Engineering , Kwangwoon University, 447-1 Wolgye-dong , Nowon-gu, Seoul 01897 , Republic of Korea.
Advancement of sensing systems, soft robotics, and point-of-care testing requires the development of highly efficient, scalable, and cost-effective physical sensors with competitive and attractive features such as high sensitivity, reliability, and preferably reversible sensing behaviors. This study reports a highly sensitive and reliable piezoresistive strain sensor fabricated by one-step carbonization of the MoS-coated polyimide film to obtain MoS-decorated laser-induced graphene. The resulting three-dimensional porous graphene nanoflakes decorated with MoS exhibit stable electrical properties yielding a reliable output for longer strain/release cycles.
View Article and Find Full Text PDFEnter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!