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Inorganic Lead-Free B-γ-CsSnI(3) Perovskite Solar Cells Using Diverse Electron-Transporting Materials: A Simulation Study

[Image: see text] B-γ-CsSnI(3) perovskite solar cells (PSCs) are simulated employing diverse electron-transporting layers (ETLs, including TiO(2), ZnO, SnO(2), GaN, C(60), and PCBM), and a comparative study has been made. Both regular and inverted planar structures are simulated. Effects of the thic...

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Autores principales: Lin, Shuo, Zhang, Baoping, Lü, Tie-Yu, Zheng, Jin-Cheng, Pan, Huaqing, Chen, Huanting, Lin, Chuanjin, Li, Xirong, Zhou, Jinrong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8515834/
https://www.ncbi.nlm.nih.gov/pubmed/34661022
http://dx.doi.org/10.1021/acsomega.1c04096
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author Lin, Shuo
Zhang, Baoping
Lü, Tie-Yu
Zheng, Jin-Cheng
Pan, Huaqing
Chen, Huanting
Lin, Chuanjin
Li, Xirong
Zhou, Jinrong
author_facet Lin, Shuo
Zhang, Baoping
Lü, Tie-Yu
Zheng, Jin-Cheng
Pan, Huaqing
Chen, Huanting
Lin, Chuanjin
Li, Xirong
Zhou, Jinrong
author_sort Lin, Shuo
collection PubMed
description [Image: see text] B-γ-CsSnI(3) perovskite solar cells (PSCs) are simulated employing diverse electron-transporting layers (ETLs, including TiO(2), ZnO, SnO(2), GaN, C(60), and PCBM), and a comparative study has been made. Both regular and inverted planar structures are simulated. Effects of the thickness of absorbers and ETLs, doping of ETLs, and interface trap states on the photovoltaic performance are studied to optimize the device structures. The regular structures have larger short-circuit current density (J(sc)) than the inverted structures, but the inverted structures have larger fill factor (FF). All of the simulated optimal PSCs have similar open-circuit voltages (V(oc)) of ∼0.96 V. The PSCs with TiO(2) ETLs have the best photovoltaic performance, and the optimum structure exhibits the highest efficiency of 20.2% with a V(oc) of 0.97 V, J(sc) of 29.67 mA/cm(2), and FF of 0.70. The optimal PSCs with ZnO, GaN, C(60), and PCBM ETLs exhibit efficiencies of 17.88, 18.09, 16.71, and 16.59%, respectively. The optimal PSC with SnO(2) ETL exhibits the lowest efficiency of 15.5% in all of the simulated PSCs due to its cliff-like band offset at the SnO(2)/CsSnI(3) interface. Furthermore, the increase of interface trap density and capture cross section is found to reduce the photovoltaic performance of PSCs. This work contributes to designing and fabricating CsSnI(3) PSCs.
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spelling pubmed-85158342021-10-15 Inorganic Lead-Free B-γ-CsSnI(3) Perovskite Solar Cells Using Diverse Electron-Transporting Materials: A Simulation Study Lin, Shuo Zhang, Baoping Lü, Tie-Yu Zheng, Jin-Cheng Pan, Huaqing Chen, Huanting Lin, Chuanjin Li, Xirong Zhou, Jinrong ACS Omega [Image: see text] B-γ-CsSnI(3) perovskite solar cells (PSCs) are simulated employing diverse electron-transporting layers (ETLs, including TiO(2), ZnO, SnO(2), GaN, C(60), and PCBM), and a comparative study has been made. Both regular and inverted planar structures are simulated. Effects of the thickness of absorbers and ETLs, doping of ETLs, and interface trap states on the photovoltaic performance are studied to optimize the device structures. The regular structures have larger short-circuit current density (J(sc)) than the inverted structures, but the inverted structures have larger fill factor (FF). All of the simulated optimal PSCs have similar open-circuit voltages (V(oc)) of ∼0.96 V. The PSCs with TiO(2) ETLs have the best photovoltaic performance, and the optimum structure exhibits the highest efficiency of 20.2% with a V(oc) of 0.97 V, J(sc) of 29.67 mA/cm(2), and FF of 0.70. The optimal PSCs with ZnO, GaN, C(60), and PCBM ETLs exhibit efficiencies of 17.88, 18.09, 16.71, and 16.59%, respectively. The optimal PSC with SnO(2) ETL exhibits the lowest efficiency of 15.5% in all of the simulated PSCs due to its cliff-like band offset at the SnO(2)/CsSnI(3) interface. Furthermore, the increase of interface trap density and capture cross section is found to reduce the photovoltaic performance of PSCs. This work contributes to designing and fabricating CsSnI(3) PSCs. American Chemical Society 2021-09-29 /pmc/articles/PMC8515834/ /pubmed/34661022 http://dx.doi.org/10.1021/acsomega.1c04096 Text en © 2021 American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Lin, Shuo
Zhang, Baoping
Lü, Tie-Yu
Zheng, Jin-Cheng
Pan, Huaqing
Chen, Huanting
Lin, Chuanjin
Li, Xirong
Zhou, Jinrong
Inorganic Lead-Free B-γ-CsSnI(3) Perovskite Solar Cells Using Diverse Electron-Transporting Materials: A Simulation Study
title Inorganic Lead-Free B-γ-CsSnI(3) Perovskite Solar Cells Using Diverse Electron-Transporting Materials: A Simulation Study
title_full Inorganic Lead-Free B-γ-CsSnI(3) Perovskite Solar Cells Using Diverse Electron-Transporting Materials: A Simulation Study
title_fullStr Inorganic Lead-Free B-γ-CsSnI(3) Perovskite Solar Cells Using Diverse Electron-Transporting Materials: A Simulation Study
title_full_unstemmed Inorganic Lead-Free B-γ-CsSnI(3) Perovskite Solar Cells Using Diverse Electron-Transporting Materials: A Simulation Study
title_short Inorganic Lead-Free B-γ-CsSnI(3) Perovskite Solar Cells Using Diverse Electron-Transporting Materials: A Simulation Study
title_sort inorganic lead-free b-γ-cssni(3) perovskite solar cells using diverse electron-transporting materials: a simulation study
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8515834/
https://www.ncbi.nlm.nih.gov/pubmed/34661022
http://dx.doi.org/10.1021/acsomega.1c04096
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