4.6 Article

Highly Sensitive, Selective, Flexible and Scalable Room-Temperature NO2 Gas Sensor Based on Hollow SnO2/ZnO Nanofibers

期刊

MOLECULES
卷 26, 期 21, 页码 -

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MDPI
DOI: 10.3390/molecules26216475

关键词

electrospinning; tin oxide nanofibers; zinc oxide; gas sensor; flexible devices

资金

  1. Science and Technology Research Key Project of Henan Educational Committee [14A140023, 14A430012]

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In this study, SnO2/ZnO nanocomposites were successfully synthesized and their gas sensing properties were investigated at room temperature, showing high sensitivity and selectivity to 0.5 ppm NO2 gas. Additionally, a flexible wearable sensor array integrated with patterned silver electrodes and SnO2/ZnO was fabricated, capable of detecting 0.1 ppm NO2 gas after 10,000 bending cycles, demonstrating a general approach for the fabrication of flexible devices for gas detection applications.
Semiconducting metal oxides can detect low concentrations of NO2 and other toxic gases, which have been widely investigated in the field of gas sensors. However, most studies on the gas sensing properties of these materials are carried out at high temperatures. In this work, Hollow SnO2 nanofibers were successfully synthesized by electrospinning and calcination, followed by surface modification using ZnO to improve the sensitivity of the SnO2 nanofibers sensor to NO2 gas. The gas sensing behavior of SnO2/ZnO sensors was then investigated at room temperature (~20 & DEG;C). The results showed that SnO2/ZnO nanocomposites exhibited high sensitivity and selectivity to 0.5 ppm of NO2 gas with a response value of 336%, which was much higher than that of pure SnO2 (13%). In addition to the increase in the specific surface area of SnO2/ZnO-3 compared with pure SnO2, it also had a positive impact on the detection sensitivity. This increase was attributed to the heterojunction effect and the selective NO2 physisorption sensing mechanism of SnO2/ZnO nanocomposites. In addition, patterned electrodes of silver paste were printed on different flexible substrates, such as paper, polyethylene terephthalate and polydimethylsiloxane using a facile screen-printing process. Silver electrodes were integrated with SnO2/ZnO into a flexible wearable sensor array, which could detect 0.1 ppm NO2 gas after 10,000 bending cycles. The findings of this study therefore open a general approach for the fabrication of flexible devices for gas detection applications.

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