Visible Light-Activated Room Temperature NO 2 Gas Sensing Based on the In 2 O 3 @ZnO Heterostructure with a Hollow Microtube Structure
The persistent challenge of poor recovery characteristics of NO sensors operated at room temperature remains significant. However, the development of In O -based gas sensing materials provides a promising approach to accelerate response and recovery for sub-ppm of NO detection at room temperature. H...
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Veröffentlicht in: | ACS sensors 2024-07, Vol.9 (7), p.3741-3753 |
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Sprache: | eng |
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Zusammenfassung: | The persistent challenge of poor recovery characteristics of NO
sensors operated at room temperature remains significant. However, the development of In
O
-based gas sensing materials provides a promising approach to accelerate response and recovery for sub-ppm of NO
detection at room temperature. Herein, we propose a simple two-step method to synthesize a one-dimensional (1D) In
O
@ZnO heterostructure material with hollow microtubes, by coupling metal-organic frameworks (MOFs) (MIL-68 (In)) and zinc ions. Meanwhile, the In
O
@ZnO composite-based gas sensor exhibits superior sensitivity performance to NO
under visible light activation. The response value to 5 ppm of NO
at room temperature is as high as 1800, which is 35 times higher than that of the pure In
O
-based sensor. Additionally, the gas sensor based on the In
O
@ZnO heterostructure demonstrates a significantly reduced response/recovery time of 30 s/67 s compared to the sensor based on pure In
O
(74 s/235 s). The outstanding gas sensing properties of the In
O
@ZnO heterostructure-based sensors can be attributed to the enhanced photogenerated charge separation efficiency resulting from the heterostructure effect, and the improved receptor function toward NO
, which can increase the reactive sites and gas adsorption capacity. In summary, this work proposes a low-cost and efficient method to synthesize a 1D heterostructure material with microtube structures, which can serve as a fundamental technique for developing high-performance room-temperature gas sensors. |
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ISSN: | 2379-3694 2379-3694 |
DOI: | 10.1021/acssensors.4c00919 |