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Charge-Transporting-Layer-Free, Vacuum-Free, All-Inorganic CsPbIBr(2) Perovskite Solar Cells Via Dipoles-Adjusted Interface

The inorganic perovskite has a better stability than the hybrid halide perovskite, and at the same time it has the potential to achieve an excellent photoelectric performance as the organic-inorganic hybrid halide perovskite. Thus, the pursuit of a low-cost and high-performance inorganic perovskite...

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Autores principales: Zhang, Wentao, Zhang, Zeyulin, Jiang, Qubo, Wei, Ziming, Zhang, Yuting, You, Hailong, Chen, Dazheng, Zhu, Weidong, He, Fengqin, Zhang, Chunfu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407222/
https://www.ncbi.nlm.nih.gov/pubmed/32640591
http://dx.doi.org/10.3390/nano10071324
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author Zhang, Wentao
Zhang, Zeyulin
Jiang, Qubo
Wei, Ziming
Zhang, Yuting
You, Hailong
Chen, Dazheng
Zhu, Weidong
He, Fengqin
Zhang, Chunfu
author_facet Zhang, Wentao
Zhang, Zeyulin
Jiang, Qubo
Wei, Ziming
Zhang, Yuting
You, Hailong
Chen, Dazheng
Zhu, Weidong
He, Fengqin
Zhang, Chunfu
author_sort Zhang, Wentao
collection PubMed
description The inorganic perovskite has a better stability than the hybrid halide perovskite, and at the same time it has the potential to achieve an excellent photoelectric performance as the organic-inorganic hybrid halide perovskite. Thus, the pursuit of a low-cost and high-performance inorganic perovskite solar cell (PSC) is becoming the research hot point in the research field of perovskite devices. In setting out to build vacuum-free and carbon-based all-inorganic PSCs with the traits of simple fabrication and low cost, we propose the ones with a simplified vertical structure of FTO/CsPbIBr(2)/carbon upon interfacial modification with PEI species. In this structure, both the electron-transporting-layer and hole-transporting-layer are abandoned, and the noble metal is also replaced by the carbon paste. At the same time, FTO is modified by PEI, which brings dipoles to decrease the work function of FTO. Through our measurements, the carrier recombination has been partially suppressed, and the performance of champion PSCs has far exceeded the control devices without PEI modification, which yields a power conversion efficiency of 4.9% with an open circuit voltage of 0.9 V and a fill factor of 50.4%. Our work contributes significantly to give an available method to explore charge-transporting-layer-free, low-cost, and high-performance PSCs.
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spelling pubmed-74072222020-08-11 Charge-Transporting-Layer-Free, Vacuum-Free, All-Inorganic CsPbIBr(2) Perovskite Solar Cells Via Dipoles-Adjusted Interface Zhang, Wentao Zhang, Zeyulin Jiang, Qubo Wei, Ziming Zhang, Yuting You, Hailong Chen, Dazheng Zhu, Weidong He, Fengqin Zhang, Chunfu Nanomaterials (Basel) Article The inorganic perovskite has a better stability than the hybrid halide perovskite, and at the same time it has the potential to achieve an excellent photoelectric performance as the organic-inorganic hybrid halide perovskite. Thus, the pursuit of a low-cost and high-performance inorganic perovskite solar cell (PSC) is becoming the research hot point in the research field of perovskite devices. In setting out to build vacuum-free and carbon-based all-inorganic PSCs with the traits of simple fabrication and low cost, we propose the ones with a simplified vertical structure of FTO/CsPbIBr(2)/carbon upon interfacial modification with PEI species. In this structure, both the electron-transporting-layer and hole-transporting-layer are abandoned, and the noble metal is also replaced by the carbon paste. At the same time, FTO is modified by PEI, which brings dipoles to decrease the work function of FTO. Through our measurements, the carrier recombination has been partially suppressed, and the performance of champion PSCs has far exceeded the control devices without PEI modification, which yields a power conversion efficiency of 4.9% with an open circuit voltage of 0.9 V and a fill factor of 50.4%. Our work contributes significantly to give an available method to explore charge-transporting-layer-free, low-cost, and high-performance PSCs. MDPI 2020-07-06 /pmc/articles/PMC7407222/ /pubmed/32640591 http://dx.doi.org/10.3390/nano10071324 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Wentao
Zhang, Zeyulin
Jiang, Qubo
Wei, Ziming
Zhang, Yuting
You, Hailong
Chen, Dazheng
Zhu, Weidong
He, Fengqin
Zhang, Chunfu
Charge-Transporting-Layer-Free, Vacuum-Free, All-Inorganic CsPbIBr(2) Perovskite Solar Cells Via Dipoles-Adjusted Interface
title Charge-Transporting-Layer-Free, Vacuum-Free, All-Inorganic CsPbIBr(2) Perovskite Solar Cells Via Dipoles-Adjusted Interface
title_full Charge-Transporting-Layer-Free, Vacuum-Free, All-Inorganic CsPbIBr(2) Perovskite Solar Cells Via Dipoles-Adjusted Interface
title_fullStr Charge-Transporting-Layer-Free, Vacuum-Free, All-Inorganic CsPbIBr(2) Perovskite Solar Cells Via Dipoles-Adjusted Interface
title_full_unstemmed Charge-Transporting-Layer-Free, Vacuum-Free, All-Inorganic CsPbIBr(2) Perovskite Solar Cells Via Dipoles-Adjusted Interface
title_short Charge-Transporting-Layer-Free, Vacuum-Free, All-Inorganic CsPbIBr(2) Perovskite Solar Cells Via Dipoles-Adjusted Interface
title_sort charge-transporting-layer-free, vacuum-free, all-inorganic cspbibr(2) perovskite solar cells via dipoles-adjusted interface
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407222/
https://www.ncbi.nlm.nih.gov/pubmed/32640591
http://dx.doi.org/10.3390/nano10071324
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