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Low-Temperature Detection of Sulfur-Hexafluoride Decomposition Products Using Octahedral Co 3 O 4 -Modified NiSnO 3 Nanofibers.
- Source :
-
ACS applied materials & interfaces [ACS Appl Mater Interfaces] 2022 Feb 23; Vol. 14 (7), pp. 9292-9306. Date of Electronic Publication: 2022 Feb 10. - Publication Year :
- 2022
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Abstract
- Sulfur hexafluoride (SF <subscript>6</subscript> ) is widely used in electrical equipment because of its excellent insulating properties. The type of internal fault in the power system can be identified by detecting SF <subscript>6</subscript> decomposition products. In this manuscript, we report a novel sensing material based on octahedral Co <subscript>3</subscript> O <subscript>4</subscript> -modified NiSnO <subscript>3</subscript> nanofibers synthesized via a two-step process based on electrospinning followed by a hydrothermal method for detecting the SF <subscript>6</subscript> decomposition products. From the evaluation of various characterization techniques, it was determined that the Co <subscript>3</subscript> O <subscript>4</subscript> octahedra adhered inflexibly to the surface of the NiSnO <subscript>3</subscript> nanofibers, which consist of smaller particles and provide a huge surface area for the adsorption of an enormous amount of gas species. Planar-type chemical gas sensors were devised, and their gas detecting performance against SF <subscript>6</subscript> decomposition products was systematically investigated. A comparison of the sensitivity properties of different amounts of charged Co <subscript>3</subscript> O <subscript>4</subscript> octahedra in NiSnO <subscript>3</subscript> nanofibers shows that the S-2-based Co <subscript>3</subscript> O <subscript>4</subscript> @NiSnO <subscript>3</subscript> composite has a high selectivity for 100 ppm SO <subscript>2</subscript> F <subscript>2</subscript> gas with a high sensing response of 22.5 at a relatively low temperature of 50 °C with a moderate response/recovery interval (∼200/∼268 s) and a low detection limit (5 ppm) over other interfering gases, such as SOF <subscript>2</subscript> , SO <subscript>2</subscript> , and H <subscript>2</subscript> S. Interestingly, the sensing properties of the fabricated sensors based on the Co <subscript>3</subscript> O <subscript>4</subscript> @NiSnO <subscript>3</subscript> composites for the SO <subscript>2</subscript> F <subscript>2</subscript> gas were improved in terms of lower operating temperatures, higher gas responses, and mild response/recovery intervals, which could be attributed to the unique microstructure effect, the catalytic influence of Co <subscript>3</subscript> O <subscript>4</subscript> octahedra, and the creation of p/n junctions to increase the charge transfer and diffusion rate within the catalytic assembly of the sensor materials. This work highlights the importance of the heterostructure design in the construction of high-performance gas sensors for the real-time detection of SF <subscript>6</subscript> decomposition products.
Details
- Language :
- English
- ISSN :
- 1944-8252
- Volume :
- 14
- Issue :
- 7
- Database :
- MEDLINE
- Journal :
- ACS applied materials & interfaces
- Publication Type :
- Academic Journal
- Accession number :
- 35143164
- Full Text :
- https://doi.org/10.1021/acsami.1c22929