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Kwon, Jimin
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Flexible Pressure-Sensitive Contact Transistors Operating in the Subthreshold Regime

Author(s)
Baek, SanghoonBae, Geun YeolKwon, JiminCho, KilwonJung, Sungjune
Issued Date
2019-08
DOI
10.1021/acsami.9b09636
URI
https://scholarworks.unist.ac.kr/handle/201301/59188
Citation
ACS APPLIED MATERIALS & INTERFACES, v.11, no.34, pp.31111 - 31118
Abstract
Organic thin-film transistor (TFT)-based pressure sensors have received huge attention for wearable electronic applications such as health monitoring and smart robotics. However, there still remains a challenge to achieve low power consumption and high sensitivity at the same time for the realization of truly wearable sensor systems where minimizing power consumption is significant because of limited battery run time. Here, we introduce a flexible pressure-sensitive contact transistor (PCT), a new type of pressure-sensing device based on organic TFTs for next-generation wearable electronic skin devices. The PCT consists of deformable S/D electrodes integrated on a staggered TFT. The deformable S/D electrodes were fabricated by embedding conducting single-walled carbon nanotubes on the surface of microstructured polydimethylsiloxane. Under pressure loads, the deformation of the electrodes on an organic semiconductor layer leads modulation of drain current from variation in both the channel geometry and contact resistance. By strategic subthreshold operation to minimize power consumption and increase the dominance of contact resistance because of gated Schottky contact, the PCT achieves both ultralow power consumption (order of 10(1) nW) and high sensitivity (18.96 kPa(-1)). Finally, we demonstrate a 5 x 5 active matrix PCT array on a 3 mu m-thick parylene substrate. The device with ultralow power consumption and high sensitivity on a biocompatible flexible substrate makes the PCT promising candidate for next-generation wearable electronic skin devices.
Publisher
AMER CHEMICAL SOC
ISSN
1944-8244
Keyword (Author)
organic field-effect transistorspressure sensorelectronic skinactive matrixcontact resistancegated Schottky contactsubthreshold operationlow power consumption
Keyword
FIELD-EFFECT TRANSISTORSTHIN-FILM TRANSISTORS25TH ANNIVERSARY ARTICLEELECTRONIC SKINSENSOR MATRIXLARGE-AREAORGANIC TRANSISTORSSCHOTTKY-BARRIERDESIGNPOWER

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