Methods of Stability Control of Perovskite Solar Cells for High Efficiency
Abstract
:1. Introduction
1.1. The Structure of a PSC Device
- (1)
- n-i-p configuration, where ETL (n-type semiconductor) is deposited on the TCO substrate, and HTL (p-type semiconductor) is located above the perovskite layer;
- (2)
- p-i-n configuration, in which HTL is deposited at TCO surface and ETL on top of the perovskite layer.
1.2. PSC Working Principles
2. Perovskite Structure Stability Methods
2.1. Methods for Making Perovskite Films
Perovskite | Deposition Method | PCE, % | Jsc, mA/cm2 | Voc, V | FF | Reference |
---|---|---|---|---|---|---|
MAI-PbI2 | Single-step deposition | 19.50 | 23.40 | 1.08 | 77.00 | [61] |
MAI-PbI2 | Single-step deposition | 24.82 | 26.35 | 1.16 | 80.90 | [6] |
MAI-PbI2-DMSO | Single-step deposition | 19.71 | 23.8 | 1.08 | 76.20 | [70] |
MAI-PbI2 | Two-step sequential deposition | 20.13 | 23.81 | 1.10 | 76.75 | [64] |
MAI-PbI2 | Two-step sequential deposition | 19.27 | 23.48 | 1.12 | 73.66 | [65] |
FA-PbI3 | Two-step sequential deposition | 22.4 | 24.4 | 1.17 | 78.89 | [66] |
MAI-PbI2 | Vacuum deposition | 19.4 | 23.11 | 1.09 | 77 | [67] |
MAI-PbI2 | Vacuum deposition | 19.1 | 24.3 | 1.15 | 79.8 | [68] |
FA1–xMAxPbI3 | Vacuum deposition | 18.8 | 22.5 | 1.1 | 75.1 | [71] |
(FAPbI3⋅xMACl)/DMF⋅NMP | Vapor-assisted solution processing | 19.78 | 24.79 | 1.07 | 74.60 | [72] |
FA-PbI3 | Vapor-assisted solution processing | 21.4 | 25.2 | 1.12 | 77.5 | [73] |
MAI-PbI2 | Vapor-assisted solution processing | 19.46 | 20.89 | 1.16 | 80.4 | [74] |
2.2. Additives for Enhanced Crystallinity
3. Impact of Interface Modification on PSC Performance
3.1. ETLs Interfacial Modifications
3.2. Interfacial Modifications in НTLs
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Muradov, A.; Frolushkina, D.; Samusenkov, V.; Zhamanbayeva, G.; Kot, S. Methods of Stability Control of Perovskite Solar Cells for High Efficiency. Energies 2021, 14, 2918. https://doi.org/10.3390/en14102918
Muradov A, Frolushkina D, Samusenkov V, Zhamanbayeva G, Kot S. Methods of Stability Control of Perovskite Solar Cells for High Efficiency. Energies. 2021; 14(10):2918. https://doi.org/10.3390/en14102918
Chicago/Turabian StyleMuradov, Abyl, Daria Frolushkina, Vadim Samusenkov, Gulsara Zhamanbayeva, and Sebastian Kot. 2021. "Methods of Stability Control of Perovskite Solar Cells for High Efficiency" Energies 14, no. 10: 2918. https://doi.org/10.3390/en14102918
APA StyleMuradov, A., Frolushkina, D., Samusenkov, V., Zhamanbayeva, G., & Kot, S. (2021). Methods of Stability Control of Perovskite Solar Cells for High Efficiency. Energies, 14(10), 2918. https://doi.org/10.3390/en14102918