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Department of Energy Science and Engineering
Polymer Energy Materials Lab
1. Journal Articles
Polymer-based flexible NOx sensors with ppb-level detection at room temperature using breath-figure molding
Yu, Seong Hoon
;
Girma, Henok Getachew
;
Sim, Kyu Min
;
Yoon, Seongwon
;
Park, Jong Mok
;
Kong, Hoyoul
;
Chung, Dae Sung
Department of Energy Science and Engineering
Polymer Energy Materials Lab
1. Journal Articles
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Title
Polymer-based flexible NOx sensors with ppb-level detection at room temperature using breath-figure molding
DGIST Authors
Chung, Dae Sung
Issued Date
2019-10
Citation
Yu, Seong Hoon. (2019-10). Polymer-based flexible NOx sensors with ppb-level detection at room temperature using breath-figure molding. doi: 10.1039/c9nr06096k
Type
Article
Article Type
Article
Keywords
FIELD-EFFECT TRANSISTOR
;
GAS SENSOR
;
ORGANIC TRANSISTORS
;
AMMONIA
;
AIR
ISSN
2040-3364
Abstract
A strategically designed polymer semiconductor thin film morphology with both high responsivity to the specific gas analyte and high signal transport efficiency is reported to realize high-performance flexible NOx gas sensors. Breath-figure (BF) molding of polymer semiconductors enables a finely defined degree of nano-porosity in polymer films with high reproducibility while maintaining high charge carrier mobility characteristics of organic field effect transistors (OFETs). The optimized BF-OFET with a donor-acceptor copolymer exhibits a maximum responsivity of over 104%, sensitivity of 774% ppm-1, and limit of detection (LOD) of 110 ppb against NO at room temperature. When tested across at NO concentrations of 0.2-10 ppm, the BF-OFET gas sensor exhibits a response time of 100-300 s, which is suitable for safety purposes in practical applications. Furthermore, BF-OFETs show a high reproducibility as confirmed by statistical analysis on 64 independently fabricated devices. The selectivity of NOx analytes is tested by comparing the sensing ability of BF-OFETs with those of other reducing gases and volatile organic compounds; the BF-OFET gas sensor platform monitors specific gas analytes based on their polarity and magnitude of sensitivity. Finally, flexible BF-OFETs conjugated with plastic substrates are demonstrated and they exhibit a sensitivity of 500% ppm-1 and a LOD of 215 ppb, with a responsivity degradation of only 14.2% after 10000 bending cycles at 1% strain. © 2019 The Royal Society of Chemistry.
URI
http://hdl.handle.net/20.500.11750/10847
DOI
10.1039/c9nr06096k
Publisher
Royal Society of Chemistry
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