Fabrication of High-Crystallinity ZnO Nanorods for Photocatalytic Application
Abstract
1. Introduction
2. Results and Discussion
2.1. Effect of Annealing Ambient
2.1.1. Structural Properties of ZnO Nanorods
2.1.2. Optical Properties of ZnO Nanorods
2.1.3. Photocatalytic Performance
2.2. Effect of Surface Coating of ZnO Nanorods
2.2.1. Structural Properties of ZnO Nanorods
2.2.2. Optical Properties of ZnO Nanorods
2.2.3. Photocatalytic Performance
3. Materials and Methods
3.1. ZnO Nanorods Grown on AZO Substrates by CBD Method
| Substrate | Zn(NO3)2·6H2O (mmol) | HMTA (mmol) | Solvent (mL) | Temperature (°C) | Time (h) |
|---|---|---|---|---|---|
| AZO | 3 | 1.5 | 200 | 95 | 5, 10 |
3.2. Annealing Effects for ZnO Nanorods in Different Ambients
3.3. ZnO Nanorods Coated AZO and ZnO Layers by Mist Chemical Vapor Deposition
| Deposition Parameters | Conditions |
|---|---|
| Solute | Zinc acetate, aluminum acetylacetonate |
| Solvent composition | Methanol and DI water (10:90, v/v) |
| Total metal concentration (mol·L−1) | 0.04 |
| Al content (at.%) | 0, 2 |
| Ultrasonic frequency (MHz) | 2.4 |
| Carrier gas (L·min−1) | N2, 2.5 |
| Dilution gas (L·min−1) | N2, 4.5 |
| Substrate | ZnO nanorods/AZO |
| Substrate temperature (°C) | 400 |
| Deposition time (min) | 10 |
3.4. Photocatalytic Degradation Experiment
3.5. Characterizations
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Sample | 2θ (°) | Intensity (cps) | FWHM (°) | d (Å) | Crystallite Size (nm) | Stress (GPa) | Lattice Constant c (Å) |
|---|---|---|---|---|---|---|---|
| AZO substrate | 34.49 | 1291 | 0.262 | 2.600 | 31.8 | −0.303 | 5.200 |
| As-grown | 34.46 | 142,849 | 0.184 | 2.601 | 46.8 | −0.256 | 5.201 |
| Vacuum 300 °C | 34.47 | 115,952 | 0.199 | 2.600 | 41.8 | −0.303 | 5.200 |
| Vacuum 400 °C | 34.44 | 144,285 | 0.181 | 2.602 | 46.0 | −0.117 | 5.204 |
| Air 300 °C | 34.50 | 158,752 | 0.171 | 2.598 | 48.5 | −0.513 | 5.195 |
| Air 400 °C | 34.46 | 179,353 | 0.172 | 2.601 | 48.2 | −0.256 | 5.201 |
| Sample | 2θ (°) | Intensity (cps) | FWHM (°) | d (Å) | Crystallite Size (nm) | Stress (GPa) | Lattice Constant c (Å) |
|---|---|---|---|---|---|---|---|
| As-grown | 34.49 | 224,919 | 0.184 | 2.598 | 45.3 | −0.443 | 5.197 |
| ZnO coating | 34.50 | 265,615 | 0.187 | 2.598 | 44.4 | −0.513 | 5.195 |
| AZO coating | 34.50 | 273,921 | 0.181 | 2.598 | 46.0 | −0.513 | 5.195 |
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Guo, T.; Ikuta, T.; Li, C. Fabrication of High-Crystallinity ZnO Nanorods for Photocatalytic Application. Inorganics 2026, 14, 145. https://doi.org/10.3390/inorganics14060145
Guo T, Ikuta T, Li C. Fabrication of High-Crystallinity ZnO Nanorods for Photocatalytic Application. Inorganics. 2026; 14(6):145. https://doi.org/10.3390/inorganics14060145
Chicago/Turabian StyleGuo, Tao, Tomoya Ikuta, and Chaoyang Li. 2026. "Fabrication of High-Crystallinity ZnO Nanorods for Photocatalytic Application" Inorganics 14, no. 6: 145. https://doi.org/10.3390/inorganics14060145
APA StyleGuo, T., Ikuta, T., & Li, C. (2026). Fabrication of High-Crystallinity ZnO Nanorods for Photocatalytic Application. Inorganics, 14(6), 145. https://doi.org/10.3390/inorganics14060145

