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Numerical Analysis of Stable (FAPbI(3))(0.85)(MAPbBr(3))(0.15)-Based Perovskite Solar Cell with TiO(2)/ZnO Double Electron Layer

Although perovskite solar cells have achieved excellent photoelectric conversion efficiencies, there are still some shortcomings, such as defects inside and at the interface as well as energy level dislocation, which may lead to non-radiative recombination and reduce stability. Therefore, in this st...

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Autores principales: Gan, Yongjin, Qiu, Guixin, Qin, Binyi, Bi, Xueguang, Liu, Yucheng, Nie, Guochao, Ning, Weilian, Yang, Ruizhao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10142877/
https://www.ncbi.nlm.nih.gov/pubmed/37110899
http://dx.doi.org/10.3390/nano13081313
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author Gan, Yongjin
Qiu, Guixin
Qin, Binyi
Bi, Xueguang
Liu, Yucheng
Nie, Guochao
Ning, Weilian
Yang, Ruizhao
author_facet Gan, Yongjin
Qiu, Guixin
Qin, Binyi
Bi, Xueguang
Liu, Yucheng
Nie, Guochao
Ning, Weilian
Yang, Ruizhao
author_sort Gan, Yongjin
collection PubMed
description Although perovskite solar cells have achieved excellent photoelectric conversion efficiencies, there are still some shortcomings, such as defects inside and at the interface as well as energy level dislocation, which may lead to non-radiative recombination and reduce stability. Therefore, in this study, a double electron transport layer (ETL) structure of FTO/TiO(2)/ZnO/(FAPbI(3))(0.85)(MAPbBr(3))(0.15)/Spiro-OMeTAD is investigated and compared with single ETL structures of FTO/TiO(2)/(FAPbI(3))(0.85)(MAPbBr(3))(0.15)/Spiro-OMeTAD and FTO/ZnO/(FAPbI(3))(0.85)(MAPbBr(3))(0.15)/Spiro-OMeTAD using the SCAPS-1D simulation software, with special attention paid to the defect density in the perovskite active layer, defect density at the interface between the ETL and the perovskite active layer, and temperature. Simulation results reveal that the proposed double ETL structure could effectively reduce the energy level dislocation and inhibit the non-radiative recombination. The increases in the defect density in the perovskite active layer, the defect density at the interface between the ETL and the perovskite active layer, and the temperature all facilitate carrier recombination. Compared with the single ETL structure, the double ETL structure has a higher tolerance for defect density and temperature. The simulation outcomes also confirm the possibility of preparing a stable perovskite solar cell.
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spelling pubmed-101428772023-04-29 Numerical Analysis of Stable (FAPbI(3))(0.85)(MAPbBr(3))(0.15)-Based Perovskite Solar Cell with TiO(2)/ZnO Double Electron Layer Gan, Yongjin Qiu, Guixin Qin, Binyi Bi, Xueguang Liu, Yucheng Nie, Guochao Ning, Weilian Yang, Ruizhao Nanomaterials (Basel) Article Although perovskite solar cells have achieved excellent photoelectric conversion efficiencies, there are still some shortcomings, such as defects inside and at the interface as well as energy level dislocation, which may lead to non-radiative recombination and reduce stability. Therefore, in this study, a double electron transport layer (ETL) structure of FTO/TiO(2)/ZnO/(FAPbI(3))(0.85)(MAPbBr(3))(0.15)/Spiro-OMeTAD is investigated and compared with single ETL structures of FTO/TiO(2)/(FAPbI(3))(0.85)(MAPbBr(3))(0.15)/Spiro-OMeTAD and FTO/ZnO/(FAPbI(3))(0.85)(MAPbBr(3))(0.15)/Spiro-OMeTAD using the SCAPS-1D simulation software, with special attention paid to the defect density in the perovskite active layer, defect density at the interface between the ETL and the perovskite active layer, and temperature. Simulation results reveal that the proposed double ETL structure could effectively reduce the energy level dislocation and inhibit the non-radiative recombination. The increases in the defect density in the perovskite active layer, the defect density at the interface between the ETL and the perovskite active layer, and the temperature all facilitate carrier recombination. Compared with the single ETL structure, the double ETL structure has a higher tolerance for defect density and temperature. The simulation outcomes also confirm the possibility of preparing a stable perovskite solar cell. MDPI 2023-04-08 /pmc/articles/PMC10142877/ /pubmed/37110899 http://dx.doi.org/10.3390/nano13081313 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gan, Yongjin
Qiu, Guixin
Qin, Binyi
Bi, Xueguang
Liu, Yucheng
Nie, Guochao
Ning, Weilian
Yang, Ruizhao
Numerical Analysis of Stable (FAPbI(3))(0.85)(MAPbBr(3))(0.15)-Based Perovskite Solar Cell with TiO(2)/ZnO Double Electron Layer
title Numerical Analysis of Stable (FAPbI(3))(0.85)(MAPbBr(3))(0.15)-Based Perovskite Solar Cell with TiO(2)/ZnO Double Electron Layer
title_full Numerical Analysis of Stable (FAPbI(3))(0.85)(MAPbBr(3))(0.15)-Based Perovskite Solar Cell with TiO(2)/ZnO Double Electron Layer
title_fullStr Numerical Analysis of Stable (FAPbI(3))(0.85)(MAPbBr(3))(0.15)-Based Perovskite Solar Cell with TiO(2)/ZnO Double Electron Layer
title_full_unstemmed Numerical Analysis of Stable (FAPbI(3))(0.85)(MAPbBr(3))(0.15)-Based Perovskite Solar Cell with TiO(2)/ZnO Double Electron Layer
title_short Numerical Analysis of Stable (FAPbI(3))(0.85)(MAPbBr(3))(0.15)-Based Perovskite Solar Cell with TiO(2)/ZnO Double Electron Layer
title_sort numerical analysis of stable (fapbi(3))(0.85)(mapbbr(3))(0.15)-based perovskite solar cell with tio(2)/zno double electron layer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10142877/
https://www.ncbi.nlm.nih.gov/pubmed/37110899
http://dx.doi.org/10.3390/nano13081313
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