| Literature DB >> 35423488 |
Zu-Yin Deng1, Ping-Chang Chiang1, Kuen-Lin Chen1,2, Jau-Han Chen3, Chiu-Hsien Wu1,2.
Abstract
We developed a resistive humidity sensor based on a heterojunction of silver sulfide (Ag2S) quantum dots (QDs) and TiO2 because of its specificity to water vapor adsorption and its insensitivity to environmental gases. The QDs were grown on a mesoporous TiO2 layer using the successive ionic layer adsorption and reaction (SILAR) method. The boundary condition between TiO2 and Ag2S provides a tunable energy gap by adjusting the number of SILAR cycles. Besides, the large surface-to-volume ratio of QDs provides a strong water vapor adsorption ability and electron transfer. Nano-silver precipitated during the SILAR process provides free electrons and lowers the Fermi level to between n-type TiO2 and p-type Ag2S. The resistance response increased significantly to 4600 and the reaction equilibrium time decreased greatly to 7 seconds due to the presence of nano-silver. Finally, the Ag2S QDs possess a best sensing range of 13-90%. To sum up, Ag2S QDs are high sensitivity and selectivity humidity sensors. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35423488 PMCID: PMC8695598 DOI: 10.1039/d0ra09756j
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1Schematic of QD film process by SILAR method.
Fig. 2Absorption spectrum of QD film (a) UV-Vis spectrum and (b) Tauc-plot.
Fig. 3Material characteristics of QD film (a) XRD spectra (b) and (c)TEM images.
Fig. 4Resistance measurement under 13–90% RH (8-cycle sample).
Fig. 5Sensing range comparison samples with different SILAR cycles.
Fig. 6Fitting curve of resistance to RH%. Insert is plot of log R to RH%.
Fig. 7Sensor stability and repeatability. The measure range was 13–90%.
Simple comparison between Ag2S QDs and reported humidity sensors
| Sensor classification | Sensing material | Range (% RH) | Sensitivity (1% RH) | Response | Response/recovery time(s) | Ref. |
|---|---|---|---|---|---|---|
| Resistive | Ag2S | 13–90 | 195.3MΩ | 4600 | 7.23/19.03 | This work |
| Capacitive | Au-PVA | 11.3–93 | 0.05 nF | 0.53 | 113–188/53–94 |
|
| Resistive | Cellulose acetate-CuO | 0–90 | 3.8 MΩ | 1093 | 13/17 |
|
| Gravimetric | CNCs | 11.3–97.3 | 55.3/275Hz | 1.28 | 60/15 |
|
| Piezoresistive | ZnO NRs | 30–80 | 3.35–15 Hz | — | 46/167 |
|
Fig. 8The ambient gas selectivity of Ag2S@TiO2 samples.
Fig. 9Diagram of electron-transfer mechanism. (a) Electron transfer of OH− adsorption (b) catalysis of silver particles.