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 |
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Hauptverfasser: | , , , , , , , , , , , |
Format: | Artikel |
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. |
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ISSN: | 1944-8244 1944-8252 |
DOI: | 10.1021/acsami.4c10014 |