| Literature DB >> 31192540 |
Jinwon Oh1, Jin-Oh Kim1, Yunjoo Kim2, Han Byul Choi1, Jun Chang Yang1, Serin Lee1, Mikhail Pyatykh1, Jung Kim2, Joo Yong Sim3, Steve Park1.
Abstract
Sensor-to-sensor variability and high hysteresis of composite-based piezoresistive pressure sensors are two critical issues that need to be solved to enable their practical applicability. In this work, a piezoresistive pressure sensor composed of an elastomer template with uniformly sized and arranged pores, and a chemically grafted conductive polymer film on the surface of the pores is presented. Compared to sensors composed of randomly sized pores, which had a coefficient of variation (CV) in relative resistance change of 69.65%, our sensors exhibit much higher uniformity with a CV of 2.43%. This result is corroborated with finite element simulation, which confirms that with increasing pore size variability, the variability in sensor characteristics also increases. Furthermore, our devices exhibit negligible hysteresis (degree of hysteresis: 2%), owing to the strong chemical bonding between the conductive polymer and the elastomer template, which prevents their relative sliding and displacement, and the porosity of the elastomer that enhances elastic behavior. Such features of the sensor render it highly feasible for various practical applications in the near future.Entities:
Keywords: chemical grafting; high uniformity; low hysteresis; microfluidics; pressure sensors
Year: 2019 PMID: 31192540 DOI: 10.1002/smll.201901744
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281