Ultrathin, flexible and multimodal tactile sensors based on organic field-effect transistors

In this study, a novel approach to the fabrication of a multimodal temperature and force sensor on ultrathin, conformable and flexible substrates is presented. This process involves coupling a charge-modulated organic field-effect transistor (OCMFET) with a pyro/piezoelectric element, namely a comme...

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Bibliographic Details
Published inScientific reports Vol. 8; no. 1; pp. 8073 - 8
Main Authors Viola, Fabrizio Antonio, Spanu, Andrea, Ricci, Pier Carlo, Bonfiglio, Annalisa, Cosseddu, Piero
Format Journal Article
LanguageEnglish
Published London Nature Publishing Group UK 23.05.2018
Nature Publishing Group
Nature Portfolio
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Summary:In this study, a novel approach to the fabrication of a multimodal temperature and force sensor on ultrathin, conformable and flexible substrates is presented. This process involves coupling a charge-modulated organic field-effect transistor (OCMFET) with a pyro/piezoelectric element, namely a commercial film of poly-vinylene difluoride (PVDF). The proposed device is able to respond to both pressure stimuli and temperature variations, demonstrating the feasibility of the approach for the development of low-cost, highly sensitive and conformable multimodal sensors. The overall thickness of the device is 1.2 μm, being thus able to conform to any surface (including the human body), while keeping its electrical performance. Furthermore, it is possible to discriminate between simultaneously applied temperature and pressure stimuli by coupling sensing surfaces made of poled and unpoled spin-coated PVDF-trifluoroethylene (PVDF-TrFE, a PVDF copolymer) with OCMFETs. This demonstrates the possibility of creating multimodal sensors that can be employed for applications in several fields, ranging from robotics to wearable electronics.
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ISSN:2045-2322
2045-2322
DOI:10.1038/s41598-018-26263-1