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Highly sensitive OFET based room temperature operated gas sensors using a thieno[3,2-b]thiophene extended phthalocyanine semiconductor.

Authors :
Isci, Recep
Yavuz, Ozgur
Faraji, Sheida
Gunturkun, Dilara
Eroglu, Mehmet
Majewski, Leszek A.
Yilmaz, Ismail
Ozturk, Turan
Source :
Journal of Materials Chemistry C; 1/7/2025, Vol. 13 Issue 1, p472-483, 12p
Publication Year :
2025

Abstract

Over the past decades, organic field-effect transistor (OFET) gas sensors have maintained a rapid development. However, the majority of OFET gas sensors show insufficient detection capability towards oxidizing and hazardous gases such as nitrogen dioxide (NO<subscript>2</subscript>) and sulfide dioxide (SO<subscript>2</subscript>). In this report, a sustainable approach toward the fabrication of OFET gas sensors, consisting of a thieno[3,2-b]thiophene (TT) and phthalocyanine (Pc) based electron rich structure (TT-Pc) for the detection of both nitrogen dioxide (NO<subscript>2</subscript>) and sulfide dioxide (SO<subscript>2</subscript>) is disclosed for the first time. Khaya gum (KG), a natural, biodegradable biopolymer is used as the gate dielectric in these OFET-based sensors. Thin film properties and surface morphology of TT-Pc were investigated by UV-Vis, SEM, AFM and contact angle measurements, which indicated a uniform and smooth film formation. The UV-Vis properties were supported by computational chemistry, performed using density functional theory (DFT) for optimizing geometry and absorption of TT-Pc models. Sensitive and selective responses of 90% and 60% were obtained from TT-Pc OFET-based sensors upon exposure to 20 ppm of NO<subscript>2</subscript> and SO<subscript>2</subscript>, respectively, under ambient conditions. One of the lowest limits of detection of ∼165 ppb was achieved for both NO<subscript>2</subscript> and SO<subscript>2</subscript> using a solution-processed TT-Pc sensor with a natural, biodegradable dielectric biopolymer. The sensors showed excellent long-term environmental and operational stability with only a 7% reduction of the sensor's initial response (%) upon exposure to NO<subscript>2</subscript> and SO<subscript>2</subscript> over nine months of operation in air. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507526
Volume :
13
Issue :
1
Database :
Complementary Index
Journal :
Journal of Materials Chemistry C
Publication Type :
Academic Journal
Accession number :
181773355
Full Text :
https://doi.org/10.1039/d4tc03208j