| Literature DB >> 26956599 |
Huiling Tai1, Zhen Yuan2, Weijian Zheng2, Zongbiao Ye2, Chunhua Liu2, Xiaosong Du2.
Abstract
Entities:
Keywords: Bilayer; Heterojunction; NH3; Reduced graphene oxide (rGO); Thermal reduction; ZnO
Year: 2016 PMID: 26956599 PMCID: PMC4783307 DOI: 10.1186/s11671-016-1343-7
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Schematic diagram shows that ZnO nanoparticles colloid and different amount GO solutions were sprayed on IDEs in sequence, and then ZnO/GO bilayer films were further restored to ZnO/rGO by thermal reduction process
Fig. 2Representative FESEM images of a rGO and b ZnO/rGO-1 films. The surface morphology features of ZnO/rGO bilayer film demonstrates obvious fluctuant transparent rGO nanosheets with dispersed ZnO nanoparticles or their aggregation
Fig. 3The UV-vis spectra indicates that GO has been restored to rGO through thermal treatment, and ZnO/rGO bilayer film is composed of ZnO and rGO components
Fig. 4High-resolution C1s XPS spectra of a GO and b ZnO/rGO-1 films. The XPS analysis further confirm the presence of rGO in ZnO/rGO thin film after thermal reduction process
Fig. 5rGO and ZnO/rGO samples are the typical p-type semiconductor, and the resistance of rGO increases after the introduction of lower ZnO nanoparticles layer
Fig. 6The enhanced sensing performances of bilayer thin film sensor are observed clearly compared with pure rGO sensor, which also are influenced by the sprayed GO amounts. The optimal GO amount is 1.5 ml
The response values and response/recovery times of all samples when exposed to 10 and 50 ppm NH3. The results show that ZnO/rGO bilayer thin film sensors exhibit superior sensing properties than bare rGO one, and the optimal GO amount is 1.5 ml
| Sensors | Response value (%) | Response time (s) | Recovery time (s) | |||
|---|---|---|---|---|---|---|
| 10 ppm | 50 ppm | 10 ppm | 50 ppm | 10 ppm | 50 ppm | |
| rGO | 0.38 | 1.08 | 108 | 92 | 278 | 268 |
| ZnO/rGO-0.5 | 0.44 | 1.22 | 102 | 86 | 274 | 256 |
| ZnO/rGO-1.0 | 0.95 | 2.38 | 88 | 82 | 208 | 219 |
| ZnO/rGO-1.5 | 1.20 | 3.05 | 78 | 84 | 188 | 216 |
| ZnO/rGO-2.0 | 1.16 | 2.81 | 80 | 75 | 160 | 212 |
| ZnO/rGO-2.5 | 0.92 | 2.30 | 82 | 68 | 183 | 223 |
Fig. 7The results exhibit the good reversibility and linear characteristic of the sensor
Fig. 8A good reproducibility with less than 10 % decrease in response could be obtained
Fig. 9a Compared with four kinds of interfering gases, the greater response values and shorter response/recovery times of the sensor to NH3 were observed obviously, exhibiting the good selective ability to NH3. b The response of the sensor to water molecules is much larger (one or two orders of magnitude) than that of the sensor when exposed to NH3 or other tested interfering gases, indicating that the interference of moisture on the prepared sensor is non-ignorable
Fig. 10Schematic illustration of NH3-sensing mechanism of (a) rGO and (b)~(c) ZnO/rGO film sensor, in which (b) and (c) shows the adsorption sites of ZnO/rGO film with proper and excess rGO amount, respectively, and the magnified view in (b) is the formed accumulation heterojunctions at the interface