4.8 Article

Design of Helically Double-Leveled Gaps for Stretchable Fiber Strain Sensor with Ultralow Detection Limit, Broad Sensing Range, and High Repeatability

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 11, 期 4, 页码 4345-4352

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.8b17666

关键词

flexible strain sensor; fiber-shaped; detection limit; sensing range; human-motion detection

资金

  1. Ministry of Science and Technology of China [2016YFA0203302]
  2. National Natural Science Foundation of China [51773183, 51603193, 21634003, U1804133, 51573027, 51403038, 51673043, 21604012, 21503079, 11572290]
  3. Science and Technology Commission of Shanghai Municipality [16JC1400702, 17QA1400400, 15XD1500400, 15JC1490200]
  4. Shanghai Municipal Education Commission [2017-01-07-00-07-E00062]

向作者/读者索取更多资源

Flexible strain sensors have attracted extensive attention in electronic skins and health monitoring systems. To date, it remains a great challenge for the development of a multifunctional strain sensor with simultaneous ultralow detection limit, broad sensing range, and high repeatability. In this paper, we report a new carbon nanotube/flexible fiber shaped strain sensor. The fiber substrate has a novel microstructure where a highly elastic rubber fiber core is tightly wound by a continuous spring-like polypropylene fiber as the shell. Our sensor offers combined sensing performances of ultralow detection limit of 0.01% strain, wide sensing range of 200% strain, and high repeatability of 20 000 cycles by designing double-leveled helical gaps. This strain sensor shows a rapid response time of 70 ms under both stretching and releasing. In addition, it is available for a variety of other deformations such as bending and torsion. Due to the unique fiber structure, it can extend the torsion detection range to 1000 rad m(-1). On the basis of the superior sensing performances, our sensor demonstrates to efficiently work for both subtle physiological activities and vigorous human motions. This work provides a general and effective strategy for designing smart wearable devices with high performance.

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