| Literature DB >> 29382155 |
Yanhui Sun1,2, Jing Wang3, Xiaogan Li4, Haiying Du5,6, Qingpan Huang7, Xiaofeng Wang8.
Abstract
In order to improve the sensing properties of tin dioxide gas sensor, four kinds of different SiO₂/Al₂O₃ ratio, different particle size of MFI type zeolites (ZSM-5) were coated on the SnO₂ to prepared zeolite modified gas sensors, and the gas sensing properties were tested. The measurement results showed that the response values of ZSM-5 zeolite (SiO₂/Al₂O₃ = 70, grain size 300 nm) coated SnO₂ gas sensors to formaldehyde vapor were increased, and the response to acetone decreased compared with that of SnO₂ gas sensor, indicating an improved selectivity property. The other three ZSM-5 zeolites with SiO₂/Al₂O₃ 70, 150 and 470, respectively, and grain sizes all around 1 μm coated SnO₂ sensors did not show much difference with SnO₂ sensor for the response properties to both formaldehyde and acetone. The sensing mechanism of ZSM-5 modified sensors was briefly analyzed.Entities:
Keywords: catalytic property; coating; gas sensor; selectivity; tin dioxide; zeolite
Year: 2018 PMID: 29382155 PMCID: PMC5856077 DOI: 10.3390/s18020390
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Structure diagram of gas sensing characterization system.
Figure 2XRD patterns of (a) MFI-S (b) MFI-70 (c) MFI-150 and (d) MFI-470.
Figure 3SEM images of (a) MFI-S; (b) MFI-70; (c) MFI-150 and (d) MFI-470.
Figure 4Cross-sectional SEM image for ZSM-5 coated SnO2 sensor.
The SiO2/Al2O3 ratio and the grain size of four kinds of zeolites.
| Zeolite | MFI-S | MFI-70 | MFI-150 | MFI-470 |
|---|---|---|---|---|
| SiO2/Al2O3 | 70 | 70 | 150 | 470 |
| Grain size | 300 nm | ~1 μm | ~1 μm | ~1 μm |
Figure 5Relationships between sensors response and operating temperature.
Figure 6Responses of ZSM-5 coated SnO2 sensors and SnO2 sensors to different gases in 45% RH.
The response values of SnO2 gas sensor and ZSM-5 zeolites coated SnO2 sensors to gases with a relative humidity 45% RH.
| Sensor | 10 ppm Formaldehyde | 10 ppm Acetone | 10 ppm Benzene | 10 ppm Toluene | 10 ppm Ammonia |
|---|---|---|---|---|---|
| SnO2 | 3.5 | 5.0 | 1.4 | 1.6 | 1.4 |
| MFI-S coated SnO2 | 11.0 | 3.5 | 1.4 | 1.9 | 1.4 |
| MFI-70 coated SnO2 | 4.4 | 7.5 | 1.5 | 2.0 | 1.4 |
| MFI-150 coated SnO2 | 4.0 | 6.8 | 1.4 | 1.7 | 1.4 |
| MFI-470 coated SnO2 | 3.0 | 5.4 | 1.3 | 1.6 | 1.3 |
Figure 7Sensors responses vs. concentration to formaldehyde.
Figure 8Transient response curves of the MFI-S coated SnO2 gas sensors to formaldehyde.
Figure 9Transient response and recovery properties of SnO2 and MFI-S coated SnO2 sensors to 10 ppm formaldehyde.
Figure 10Responses of MFI-S coated sensor to 2–50 ppm formaldehyde in 20% RH and 50% RH.
The comparison on sensing properties of some similar structures sensors for formaldehyde gas detection.
| Type | Structures of the Sensing Materials | Response Value (Concentration, Relative Humidity) | Operating Temperature (°C) | Response Time (s) | Recovery Time (s) |
|---|---|---|---|---|---|
| Obtained materials | MFI-S coated SnO2 | 11.0 (10 ppm, 45% RH) | 300 | 50 | 88 |
| Zeolite/metal oxide composite | ZnO and zeolitic imidazolate framework-8 core–shell heterostructures [ | ~13.0 (100 ppm,50% RH) | 300 | 16 | 9 |
| Zeolitic imidazolate framework [ | 13.9 (100 ppm, <70% RH) | 150 | ~100 | ~120 | |
| Hierarchical porous nanostructures | Hierarchical porous nanostructures of SnO2 [ | ~8.0 (10 ppm) | 330 | 4.03 | _ |
| Au@SnO2 core–shell structure [ | 2.9 (50 ppm, 50% RH) | room temperature | 80 | 62 | |
| SnO2 and other oxides doped/heterostructures | NiO-doped SnO2 nanofiber [ | 6.3 (10 ppm) | 200 | 50 | 80 |
| 1D NiO-SnO2 nanofibers [ | 1.2 (20 ppm) | 275 | _ | _ | |
| SnO2/In2O3 hetero-nanofiber [ | 7.5 (10 ppm) | 375 | ~50 | ~70 | |
| MWCNTs-doped SnO2 [ | ~1.5 (10 ppm) | 250 | >100 | >90 | |
| Zn2SnO4/SnO2 cubes [ | 19.98 (20 ppm) | 200 | 66 | 27 | |
| SnO2/ZnO nanofibers [ | ~4.0 (50 ppm) | 350 | _ | _ | |
| 3D center-hollow architecture and polyporous surface SnO2-ZnO composites [ | ~2 (10 ppm) | room temperature | _ | _ | |
| Cd-Doped TiO2-SnO2 [ | 32 (200 ppm) | 320 | 25 | 17 | |
| Antimony-Doped SnO2 nanoparticles [ | ~7.0 (10 ppm) | 136 | _ | _ |