CdTe-Based Thin Film Solar Cells: Past, Present and Future
Abstract
:1. Introduction
2. The Past and Present: CdTe/CdS Solar Cell Configuration
2.1. The Front Contact
2.1.1. Indium Tin Oxide
2.1.2. Zinc Oxides
2.1.3. Tin Oxides
2.1.4. Tin Compounds
2.2. Buffer Layer
2.2.1. Chemical Bath Deposition
Typically We Can Identify Three Different Steps
2.2.2. Close-Spaced Sublimation (CSS)
2.2.3. Sputtering
2.2.4. Vacuum Evaporation
2.3. CdTe Absorber
2.3.1. Vacuum Thermal Evaporation
2.3.2. Electro-Deposition
2.3.3. Screen Printing
2.3.4. Metal-Organic Chemical Vapor Deposition
2.3.5. Sputtering
2.3.6. Close Spaced Sublimation
2.3.7. Vapour Transport Deposition
2.4. Back Contact
2.5. CdTe Activation Treatment
2.5.1. CdCl2 Treatment
2.5.2. Chlorine Containing Gases
2.5.3. MgCl2 Treatment
2.5.4. Recrystallization
2.5.5. Intermixing
3. The New CdTe Solar Cell Structure
- (1)
- CdSexTe1−x introduction for CdTe band gap grading
- (2)
- MgZnO introduction for high transparency
3.1. CdSexTe1−x Introduction for CdTe Band Gap Grading
3.2. MgZnO Introduction for High Transparency
4. Future Improvements and Upgrades
4.1. Increasing the Net Charge Density: Doping
4.2. Tandem Cells
5. Alternative Absorbers
- (1)
- Te scarcity
- (2)
- Perception of CdTe due to the presence of cadmium.
6. Environmental Aspects
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Romeo, A.; Artegiani, E. CdTe-Based Thin Film Solar Cells: Past, Present and Future. Energies 2021, 14, 1684. https://doi.org/10.3390/en14061684
Romeo A, Artegiani E. CdTe-Based Thin Film Solar Cells: Past, Present and Future. Energies. 2021; 14(6):1684. https://doi.org/10.3390/en14061684
Chicago/Turabian StyleRomeo, Alessandro, and Elisa Artegiani. 2021. "CdTe-Based Thin Film Solar Cells: Past, Present and Future" Energies 14, no. 6: 1684. https://doi.org/10.3390/en14061684
APA StyleRomeo, A., & Artegiani, E. (2021). CdTe-Based Thin Film Solar Cells: Past, Present and Future. Energies, 14(6), 1684. https://doi.org/10.3390/en14061684