Controlling surface morphology of Ag-doped ZnO as a buffer layer by dispersion engineering in planar perovskite solar cells

被引:0
作者
Ghazaleh Bagha
Katayoon Samavati
Homam Naffakh-Moosavy
Laleh Farhang Matin
机构
[1] Islamic Azad University,Department of Physics, North Tehran Branch
[2] Tarbiat Modares University (TMU),Department of Materials Engineering
来源
Scientific Reports | / 14卷
关键词
Buffer layer; Water–ethanol mixtures; Dispersion; ZnO; Electron transport layer;
D O I
暂无
中图分类号
学科分类号
摘要
In recent years, the power conversion efficiency (PCE (%)) of perovskite solar cells (PSCs) has improved to over 26%. To enhance the photovoltaic properties of PSCs, several materials for the electron transport layer (ETL) have been investigated. Zinc oxide (ZnO) is a significant ETL due to its high electron mobility and optical transparency in PSCs. As a result of various deposition methods, ZnO ETL can be processed at low temperatures. On the other hand, based on several studies, metal-doped ZnO can facilitate electron transfer, thereby improving the performance of un-doped ZnO ETL-based PSCs. Here, to improve the PCE (%) and long-term stability of un-doped ZnO ETL-PSCs, silver (Ag)-doped ZnO 1wt% as a buffer layer is examined. In this paper, with the addition of an organic solvent (ethanol) to the dispersion of Ag-doped ZnO 1 wt% nanoparticles (NPs) in deionized (DI) water, the morphology of the buffer layer (Ag-doped ZnO 1 wt%) can be controlled. This approach focuses on reducing the wettability of the ZnO/Ag-doped ZnO 1 wt% bilayer ETLs and enhancing the stability of un-doped ZnO ETL-PSCs. According to the results, the ZnO/H2O-ethanol mixtures-Ag-doped ZnO 1 wt% bilayer ETL leads to the formation of high-quality perovskite with low defects, reducing the recombination rate, and long-term stability of un-doped ZnO ETL-PSCs in ambient conditions.
引用
收藏
相关论文
共 58 条
[1]  
Kumar NS(2021)A review on perovskite solar cells (PSCs), materials and applications J. Materiom. 7 940-956
[2]  
Naidu KCB(2023)Stability of perovskite solar cells: issues and prospects RSC Adv. 13 1787-1810
[3]  
Chowdhury TA(2023)Improved PCE in stable lead-free perovskite solar cells based on band engineering of ETL and absorber Solar Energy 262 27-520
[4]  
Ferhati H(2023)Recent progress in the development of high-efficiency inverted perovskite solar cells NPG Asia Mater. 15 511-266
[5]  
AbdelMalek F(2017)Engineering interface structure to improve efficiency and stability of organometal halide perovskite solar cells J. Phys. Chem. B 122 2200823-106
[6]  
Djeffal F(2022)Research progress of buffer layer and encapsulation layer prepared by atomic layer deposition to improve the stability of perovskite solar cells Solar RRL 6 243-397
[7]  
Liu S(2022)Progress and challenges on scaling up of perovskite solar cell technology Sustain. Energy Fuels 6 1700209-179
[8]  
Qiu L(2020)Advances in stability of perovskite solar cells Organ. Electron. 78 98-43553
[9]  
Zhang Y(2018)Low-temperature processed, efficient, and highly reproducible cesium-doped triple cation perovskite planar heterojunction solar cells Solar Rrl 2 389-34187
[10]  
Yan J(2018)Theoretical lifetime extraction and experimental demonstration of stable cesium-containing tri-cation perovskite solar cells with high efficiency Electrochim. Acta 265 172-5491