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Cited 3 time in webofscience Cited 3 time in scopus
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Development of Dual-Selective Chemiresistive Sensor for NH3 and NOx at Room Temperature Using MoS2/MoO2 Heterostructures

Authors
Muthumalai, K.Manoharan, MathankumarGovindharaj, KamarajSaravanan, PoovarasanHaldorai, YuvarajSofer, ZdenekKumar, Ramasamy Thangavelu Rajendra
Issue Date
Jun-2024
Publisher
American Chemical Society
Keywords
MoS2/MoO2; n-n heterojunction; dual selectivity; NH3; NO x; chemiresistive sensor
Citation
ACS Applied Nano Materials, v.7, no.12, pp 14164 - 14173
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
ACS Applied Nano Materials
Volume
7
Number
12
Start Page
14164
End Page
14173
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/26152
DOI
10.1021/acsanm.4c01701
ISSN
2574-0970
2574-0970
Abstract
Molybdenum oxides and sulfides stand out as promising materials for chemiresistive gas sensors. In this study, we tailored MoS2/MoO2 heterostructures, adapting pyrolysis-assisted in situ sulfidation of hydrothermally grown MoO3 by tuning the concentration of the sulfur source. The MoS2 flakes adorning a MoO2 cuboid rod heterostructure represent the n-type semiconducting property, confirmed by Hall measurement. Notably, the sensor demonstrated dual selectivity toward NH3 and NOx at room temperature. To our knowledge, the dual selectivity of the MoS2/MoO2 heterostructure has not been reported previously. The heterostructure, characterized by a higher carrier concentration, displayed enhanced sensitivity, yielding responses of 10.3 and 8.4% to 10 ppm of NH3 and NOx, respectively. The lowest detection limits were 0.32 ppm for NH3 and 0.29 ppm for NOx. Furthermore, the heterostructure sensor exhibited commendable cyclic stability and device reproducibility. A long-term stability assessment over 50 days revealed that the response of the sensor remained at 98.6 and 98.4% toward NH3 and NOx, respectively. Our results show that the optimized n-n heterojunction between MoO2 and MoS2 offers superior sensitivity to NH3 and NOx at room temperature. The results could have potential for the development of dual gas sensors suitable for real-time applications.
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