| Literature DB >> 24618047 |
Cuncun Wu, Lin Wei, Yitan Li, Chang Liu, Jun Jiao, Yanxue Chen1, Liangmo Mei.
Abstract
Ordered ZnO nanosheet arrays were grown on weaved titanium wires by a low-temperature hydrothermal method. CdS nanoparticles were deposited onto the ZnO nanosheet arrays using the successive ionic layer adsorption and reaction method to make a photoanode. Nanoparticle-sensitized solar cells were assembled using these CdS/ZnO nanostructured photoanodes, and their photovoltaic performance was studied systematically. The best light-to-electricity conversion efficiency was obtained to be 2.17% under 100 mW/cm2 illumination, and a remarkable short-circuit photocurrent density of approximately 20.1 mA/cm2 was recorded, which could attribute to the relatively direct pathways for transportation of electrons provided by ZnO nanosheet arrays as well as the direct contact between ZnO and weaved titanium wires. These results indicate that CdS/ZnO nanostructures on weaved titanium wires would open a novel possibility for applications of low-cost solar cells.Entities:
Year: 2014 PMID: 24618047 PMCID: PMC3975228 DOI: 10.1186/1556-276X-9-112
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Schematic diagram of the CdS/ZnO/Ti nanostructured solar cell.
Figure 2Typical FESEM images of ZnO nanosheets on weaved titanium wire substrate. (a) The low-magnification and (c) high-magnification FESEM images of ZnO nanosheets. (b) The cross-sectional view of ZnO nanosheets. (d) ZnO nanosheets deposited with CdS nanoparticles for 20 cycles.
Figure 3XRD patterns of ZnO nanosheets (black line) and ZnO/CdS nanosheets on weaved titanium wires (red line).
Figure 4Typical optical transmission spectrum of CdS/ZnO nanostructures.
Figure 5- curves for CdS/ZnO/Ti nanoparticle-sensitized solar cell with different CdS SILAR cycles.
, , FF, and efficiency
| CdS-10 cycles | 0.31 | 6.1 | 0.32 | 0.61 |
| CdS-20 cycles | 0.29 | 20.1 | 0.37 | 2.17 |
| CdS-30 cycles | 0.28 | 11.4 | 0.34 | 1.10 |
Voc, open-circuit voltage; Jsc, short-circuit photocurrent density; FF, fill factor; η, energy conversion efficiency.