Wafer-Scale Synthesized MoS 2 /Porous Silicon Nanostructures for Efficient and Selective Ethanol Sensing at Room Temperature
This paper presents the performance of a highly selective ethanol sensor based on MoS -functionalized porous silicon (PSi). The uniqueness of the sensor includes its method of fabrication, wafer scalability, affinity for ethanol, and high sensitivity. MoS nanoflakes (NFs) were synthesized by sulfuri...
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Veröffentlicht in: | ACS applied materials & interfaces 2017-06, Vol.9 (24), p.21017-21024 |
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Hauptverfasser: | , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | This paper presents the performance of a highly selective ethanol sensor based on MoS
-functionalized porous silicon (PSi). The uniqueness of the sensor includes its method of fabrication, wafer scalability, affinity for ethanol, and high sensitivity. MoS
nanoflakes (NFs) were synthesized by sulfurization of oxidized radio-frequency (RF)-sputtered Mo thin films. The MoS
NFs synthesis technique is superior in comparison to other methods, because it is chip-scalable and low in cost. Interdigitated electrodes (IDEs) were used to record resistive measurements from MoS
/PSi sensors in the presence of volatile organic compound (VOC) and moisture at room temperature. With the effect of MoS
on PSi, an enhancement in sensitivity and a selective response for ethanol were observed, with a minimum detection limit of 1 ppm. The ethanol sensitivity was found to increase by a factor of 5, in comparison to the single-layer counterpart levels. This impressive response is explained on the basis of an analytical resistive model, the band gap of MoS
/PSi/Si, the interface formed between MoS
and PSi, and the chemical interaction of the vapor molecules and the surface. This two-dimensional (2D) composite material with PSi paves the way for efficient, highly responsive, and stable sensors. |
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ISSN: | 1944-8244 1944-8252 |
DOI: | 10.1021/acsami.7b05468 |