W 18 O 49 Nanofibers Functionalized with Graphene as a Selective Sensing of NO 2 Gas at Room Temperature

Recent trends in two-dimensional (2D) graphene have demonstrated significant potential for gas-sensing applications with significantly enhanced sensitivity even at room temperature. Herein, this study presents fabrication of distinctive gas sensor based on one-dimensional (1D) W O nanofibers decorat...

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Veröffentlicht in:ACS applied materials & interfaces 2024-09, Vol.16 (37), p.49520-49532
Hauptverfasser: Tiwari, Manish Kumar, Kanwade, Archana R, Rajore, Shraddha M, Satrughna, Jena Akash Kumar, Ito, Yuta, Lee, Hyunju, Ohshita, Yoshio, Ogura, Atsushi, Mali, Sawanta S, Patil, Jyoti V, Hong, Chang Kook, Shirage, Parasharam M
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Sprache:eng
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Zusammenfassung:Recent trends in two-dimensional (2D) graphene have demonstrated significant potential for gas-sensing applications with significantly enhanced sensitivity even at room temperature. Herein, this study presents fabrication of distinctive gas sensor based on one-dimensional (1D) W O nanofibers decorated 2D graphene, specifically coated on copper (Cu)-based interdigitated electrodes formed by DC sputtering, which can selectively detect NO gas at room temperature. The sensor device fabricated using W O /Gr1.5% (i.e., W O nanofibers hybrid nanocomposite with 1.5 wt % graphene) displays excellent overall sensing performance at 27 °C (room temperature) with high response (∼150-160 times) to NO gas. The W O /Gr1.5%-based sensor device reflects the highly selective detection toward NO gas among various gases with quick response time of 3 s and speedy recovery in 6 s. The limit of detection of ∼0.3 ppm with excellent reproducibility and stability for 3 months in all weather conditions (tested in humidity conditions 20-97%) are superior features of the device under test. However, W O /Gr3% displayed higher selectivity for NO but resulted with comparatively reduced sensitivity than W O /Gr1.5% sensor. The enhanced sensing performance could be attributed to the graphene content to decorate the nanofibers on it, oxygen vacancies/defects, and the contacts between the sensing material and Cu. This favorable synthesis and properties of self-assembled hybrid composite materials provide a potential utilization for detecting NO gas in environmental safety inspection.
ISSN:1944-8244
1944-8252
DOI:10.1021/acsami.4c10014