Recent progress in conducting polymer composite/nanofiber-based strain and pressure sensors

L Veeramuthu, M Venkatesan, JS Benas, CJ Cho… - Polymers, 2021 - mdpi.com
L Veeramuthu, M Venkatesan, JS Benas, CJ Cho, CC Lee, FK Lieu, JH Lin, RH Lee, CC Kuo
Polymers, 2021mdpi.com
The Conducting of polymers belongs to the class of polymers exhibiting excellence in
electrical performances because of their intrinsic delocalized π-electrons and their tunability
ranges from semi-conductive to metallic conductive regime. Conducting polymers and their
composites serve greater functionality in the application of strain and pressure sensors,
especially in yielding a better figure of merits, such as improved sensitivity, sensing range,
durability, and mechanical robustness. The electrospinning process allows the formation of …
The Conducting of polymers belongs to the class of polymers exhibiting excellence in electrical performances because of their intrinsic delocalized π- electrons and their tunability ranges from semi-conductive to metallic conductive regime. Conducting polymers and their composites serve greater functionality in the application of strain and pressure sensors, especially in yielding a better figure of merits, such as improved sensitivity, sensing range, durability, and mechanical robustness. The electrospinning process allows the formation of micro to nano-dimensional fibers with solution-processing attributes and offers an exciting aspect ratio by forming ultra-long fibrous structures. This review comprehensively covers the fundamentals of conducting polymers, sensor fabrication, working modes, and recent trends in achieving the sensitivity, wide-sensing range, reduced hysteresis, and durability of thin film, porous, and nanofibrous sensors. Furthermore, nanofiber and textile-based sensory device importance and its growth towards futuristic wearable electronics in a technological era was systematically reviewed to overcome the existing challenges.
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