| Literature DB >> 32155699 |
Milena Šetka1, Fabio A Bahos2, Daniel Matatagui2,3, Isabel Gràcia4, Eduard Figueras4, Jana Drbohlavová1, Stella Vallejos1,4.
Abstract
Love wave sensors with silver-Entities:
Keywords: gas sensors; love wave sensors; polypyrrole; volatile organic compounds
Mesh:
Substances:
Year: 2020 PMID: 32155699 PMCID: PMC7085531 DOI: 10.3390/s20051432
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Schematic view of a L-SAW sensor and solutions used for deposition of PPy or Ag/PPy guiding/sensitive layers.
Figure 2TEM image of PPy NPs (a); high-resolution XPS spectra of the C 1s (b) and N 1s (c) core levels at the PPy NPs; HR-TEM image of the Ag NPs (d); high resolution XPS spectra of the Ag 3d core levels at the Ag NPs (e); typical cross-section SEM image of the L-SAW sensors after spin coating of PPy or Ag/PPy NPs (f).
Figure 3Transmission scattering parameters (S21) of the uncoated (reference) and coated (with PPy or Ag/PPy sensitive layer) L-SAW structures.
Figure 4Calibrations curves and dynamic responses of the L-SAW sensors (based on PPy and Ag/PPy) for acetone (a,b), ethanol (c,d), and toluene (e,f). The insets in (b,d,f) display the time dependent response to 5 ppm of each gas.
Figure 5Sensitivity of Ag/PPy L-SAW sensors to acetone, ethanol, carbon monoxide, hydrogen and toluene for concentrations between 0.5 and 5 ppm.
Comparative table of state-of the-art SAW sensors and Ag/PPy L-SAW sensors for acetone, ethanol and toluene.
| Sensitive Material | Gas | LTC (ppm) | HTC (ppm) | Sensitivity (Hz/ppm) | LOD (ppm) | Temperature | Reference |
|---|---|---|---|---|---|---|---|
| Ag/PPy | Acetone | 0.5 | 5 | 910 | 0.003 | RT | This work |
| Ethanol | 742 | 0.005 | |||||
| Toluene | 340 | 0.020 | |||||
| PPy | Acetone | 5.5 | 80 | 116.4 | - | RT | [ |
| PEI/Fe3O4 | Ethanol | 160 | 16,000 | 1.6 | 65 | ND | [ |
| Toluene | 1.9 | 54 | |||||
| MWCNTs-PEI | Ethanol | 200 | 40,000 | 1.2 | 176.5 | ND | [ |
| Toluene | 1.2 | 170.7 | |||||
| PEI/WO3 | Acetone | 50 | 800 | 3.4 | 15 | RT | [ |
| Ethanol | 7.9 | 6 | |||||
| Toluene | 4.8 | 11 | |||||
| GO | Ethanol | 30 | 750 | 30 | - | ND | [ |
| Toluene | 24 | - | |||||
| ZIF/Au | Acetone | 5 | 25 | 28 | 1.1 | RT | [ |
| Ethanol | 72 | 0.5 | |||||
| SnO2/Co3O4 | Toluene | 100 | 900 | 0.6 | 50 | RT | [ |
| PEUT-MWCNTs | Toluene | 25 | 200 | 12.2 | 0.6 | RT | [ |
LTC—lowest tested concentration, HTC—highest tested concentration, RT—room temperature, MWCNTs—multi-wall carbon nanotubes, PEI—polyethylenimine, GO—graphene oxide, ZIF—zeolitic imidazolate frameworks, PEUT—polyetherurethane, ND—not defined.
Figure 6Frequency response of Ag/PPy L-SAW sensor to acetone concentration of 5 ppm under dry air, 10% and 30% relative humidity (RH).