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Development of Ultra-Fast Surface Acoustic Wave-Based NO2 Sensor Incorporating a Monolayered Graphene: MoS2 Sensing Material and a Microheater for Spacecraft Applications
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Publication Year
2025-04-01
Journal
Applied Sciences (Switzerland)
Publisher
Multidisciplinary Digital Publishing Institute (MDPI)
Citation
Applied Sciences (Switzerland), Vol.15 No.7
Keyword
2D sensing materialgraphene/MoS2 heterostructureinterface electronicsNO2 sensorspacecraftsurface acoustic wave
Mesh Keyword
2d sensing materialA-stableGraphene/MoS2 heterostructureGraphenesInterface electronicsMicroheaterMoS 2NO 2 sensorSensing materialSurface acoustic waves
All Science Classification Codes (ASJC)
Materials Science (all)InstrumentationEngineering (all)Process Chemistry and TechnologyComputer Science ApplicationsFluid Flow and Transfer Processes
Abstract
A surface acoustic wave-based NO2 sensor and its interface electronics, utilizing monolayered two-dimensional sensing materials, were developed for internal pollution monitoring in spacecraft. The sensor system consists of a two-port SAW delay line with monolayered graphene/MoS2 flakes in the cavity region between two interdigital transducers, along with the interface electronics. A microheater was integrated adjacent to the sensor to maintain a stable temperature field on the sensor surface, thereby enhancing sensitivity, response/recovery times, and selectivity. The monolayered graphene/MoS2 sensing material, with its high surface-to-volume ratio, excellent mobility, and moderate bonding force with target molecules, enables the rapid response and recovery times of less than 2.5 and 8 s, respectively—among the fastest reported in SAW gas sensor technology. The developed sensor combines the conductivity changes, the mass loading effect, and a synergistic effect that promotes carrier separation caused by a built-in potential barrier between the two monolayers, providing exceptionally high sensitivity of 578 Hz/ppm. Additionally, the sensor’s interface electronics were engineered to mitigate the effects of external factors, such as temperature and humidity, ensuring a stable and reliable performance under varying harsh conditions.
ISSN
2076-3417
Language
eng
URI
https://aurora.ajou.ac.kr/handle/2018.oak/38232
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=105002274661&origin=inward
DOI
https://doi.org/10.3390/app15074050
Journal URL
https://www.mdpi.com/journal/applsci/
Type
Article
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Lee, Kee Keun Image
Lee, Kee Keun이기근
Department of Electrical and Computer Engineering
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