| Literature DB >> 25411567 |
Nur Ashikyn Hambali1, Hafizal Yahaya1, Mohamad Rusop Mahmood2, Tomoaki Terasako3, Abdul Manaf Hashim1.
Abstract
The electrochemical growth of zinc oxide (ZnO) nanostructures on graphene on glass using zinc nitrate hexahydrate was studied. The effects of current densities and temperatures on the morphological, structural, and optical properties of the ZnO structures were studied. Vertically aligned nanorods were obtained at a low temperature of 75°C, and the diameters increased with current density. Growth temperature seems to have a strong effect in generating well-defined hexagonal-shape nanorods with a smooth top edge surface. A film-like structure was observed for high current densities above -1.0 mA/cm(2) and temperatures above 80°C due to the coalescence between the neighboring nanorods with large diameter. The nanorods grown at a temperature of 75°C with a low current density of -0.1 mA/cm(2) exhibited the highest density of 1.45 × 10(9) cm(-2). X-ray diffraction measurements revealed that the grown ZnO crystallites were highly oriented along the c-axis. The intensity ratio of the ultraviolet (UV) region emission to the visible region emission, I UV/I VIS, showed a decrement with the current densities for all grown samples. The samples grown at the current density below -0.5 mA/cm(2) showed high I UV/I VIS values closer to or higher than 1.0, suggesting their fewer structural defects. For all the ZnO/graphene structures, the high transmittance up to 65% was obtained at the light wavelength of 550 nm. Structural and optical properties of the grown ZnO structures seem to be effectively controlled by the current density rather than the growth temperature. ZnO nanorod/graphene hybrid structure on glass is expected to be a promising structure for solar cell which is a conceivable candidate to address the global need for an inexpensive alternative energy source.Entities:
Keywords: Electrochemical deposition; Graphene; Hybrid structure; Nanorod; Solar cell; Zinc oxide
Year: 2014 PMID: 25411567 PMCID: PMC4236223 DOI: 10.1186/1556-276X-9-609
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Schematic diagram of the experimental setup and time chart. (a) Schematic diagram of electrochemical deposition setup and (b) growth time chart.
Figure 2FESEM images and EDX spectra of ZnO nanostructures. Top view of FESEM images and EDX spectra of ZnO nanostructures grown with different current densities at temperatures of (a-c) 75°C, (d-f) 80°C, and (g-i) 90°C.
Density and diameter of the grown ZnO nanorods
| Electrochemical deposition (this work) | 75 | -0.1 | Zinc nitrate solution | 1.45 × 109 | 100 to 275 | Nanorods |
| -0.5a | 8.09 × 108 | 225 to 575 | Nanorods | |||
| -1.0 | 1.24 × 109 | 100 to 325 | Nanorods | |||
| -2.0a | 3.53 × 108 | 200 to 825 | Nanorods | |||
| -3.0 | 7.47 × 108 | 250 to 500 | Nanorods | |||
| 80 | -0.1 | 5.60 × 108 | 243 to 500 | Nanorods | ||
| -1.0 | - | - | Film-like structure | |||
| -3.0 | - | - | Film-like structure | |||
| 90 | -0.1 | 6.22 × 108 | 214 to 500 | Nanorods | ||
| -1.0 | - | - | Film-like structure | |||
| -3.0 | - | - | Film-like structure | |||
| Electrochemical deposition [ | 90 | -0.15 | Zinc nitrate solution | 5.83 × 108 | 370 to 780 | Nanorods |
| Electrochemical deposition [ | 80 | -0.1 | Zinc nitrate solution and HMTA | 1.84 × 107 | 190 to 450 | Nanorods |
| -0.5 | 1.37 × 109 | 260 to 480 | Nanorods | |||
| -1.0 | 1.24 × 108 | 660 to 1,000 | Nanorods | |||
| -1.5 | 3.42 × 107 | 950 to 1,330 | Nanocrystal | |||
| -2.0 | 2.32 × 107 | 570 to 2,030 | Rods | |||
| Hydrothermal process [ | 60 | - | Zinc nitrate solution and HMTA | 3.10 × 107 | 710 | Nanorods |
| 80 | - | 3.00 × 107 | 680 | Nanorods | ||
| 95 | - | 4.20 × 107 | 690 | Nanorods | ||
| Thermal evaporation [ | 600 | - | Zn powder and oxygen gas | - | - | Nanocluster |
| 800 | - | 6.86 × 109 | 50 to 150 | Nanorods | ||
| 1,000 | - | - | - | Thin film | ||
| Metal-organic vapor-phase epitaxy (MOVPE) [ | 400 | - | Diethylzinc (DEZn) and oxygen gas | 4.00 × 109 | 100 ± 10 | Nanoneedles |
| 600 | - | | 8.00 × 107 | 90 ± 20 | Nanoneedles | |
| 750 | - | 5.00 × 107 | Not stated | Nanoneedles |
aSEM data not shown.
Figure 3XRD spectra of the grown ZnO structures with different applied current densities and temperatures. XRD spectra of the grown ZnO structures with different applied current densities at temperatures of (a) 75°C, (b) 80°C, and (c) 90°C. (d) Current density vs. intensity of the ZnO (002) peak.
Figure 4PL spectra of the grown ZnO structures with different applied current densities and temperatures. PL spectra of the grown ZnO structures with different applied current densities at temperatures of (a) 75°C, (b) 80°C, and (c) 90°C. (d) Current density vs. PL intensity ratio, IUV/IVIS.
Figure 5Optical transmittance of the ZnO structures. Optical transmittance of the ZnO structures grown at (a) 75°C and (b) 90°C with different applied current densities. (c) Current density vs. transmittance at wavelength of 550 nm.