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Improving Two-Step Prepared CH(3)NH(3)PbI(3) Perovskite Solar Cells by Co-Doping Potassium Halide and Water in PbI(2) Layer

Incorporating additives into organic halide perovskite solar cells is the typical approach to improve power conversion efficiency. In this paper, a methyl-ammonium lead iodide (CH(3)NH(3)PbI(3), MAPbI(3)) organic perovskite film was fabricated using a two-step sequential process on top of the poly(3...

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Autores principales: Wu, Hsuan-Ta, Cheng, Yu-Ting, Leu, Ching-Chich, Wu, Shih-Hsiung, Shih, Chuan-Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6566305/
https://www.ncbi.nlm.nih.gov/pubmed/31035582
http://dx.doi.org/10.3390/nano9050666
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author Wu, Hsuan-Ta
Cheng, Yu-Ting
Leu, Ching-Chich
Wu, Shih-Hsiung
Shih, Chuan-Feng
author_facet Wu, Hsuan-Ta
Cheng, Yu-Ting
Leu, Ching-Chich
Wu, Shih-Hsiung
Shih, Chuan-Feng
author_sort Wu, Hsuan-Ta
collection PubMed
description Incorporating additives into organic halide perovskite solar cells is the typical approach to improve power conversion efficiency. In this paper, a methyl-ammonium lead iodide (CH(3)NH(3)PbI(3), MAPbI(3)) organic perovskite film was fabricated using a two-step sequential process on top of the poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) hole-transporting layer. Experimentally, water and potassium halides (KCl, KBr, and KI) were incorporated into the PbI(2) precursor solution. With only 2 vol% water, the cell efficiency was effectively improved. Without water, the addition of all of the three potassium halides unanimously degraded the performance of the solar cells, although the crystallinity was improved. Co-doping with KI and water showed a pronounced improvement in crystallinity and the elimination of carrier traps, yielding a power conversion efficiency (PCE) of 13.9%, which was approximately 60% higher than the pristine reference cell. The effect of metal halide and water co-doping in the PbI(2) layer on the performance of organic perovskite solar cells was studied. Raman and Fourier transform infrared spectroscopies indicated that a PbI(2)-dimethylformamide-water related adduct was formed upon co-doping. Photoluminescence enhancement was observed due to the co-doping of KI and water, indicating the defect density was reduced. Finally, the co-doping process was recommended for developing high-performance organic halide perovskite solar cells.
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spelling pubmed-65663052019-06-17 Improving Two-Step Prepared CH(3)NH(3)PbI(3) Perovskite Solar Cells by Co-Doping Potassium Halide and Water in PbI(2) Layer Wu, Hsuan-Ta Cheng, Yu-Ting Leu, Ching-Chich Wu, Shih-Hsiung Shih, Chuan-Feng Nanomaterials (Basel) Article Incorporating additives into organic halide perovskite solar cells is the typical approach to improve power conversion efficiency. In this paper, a methyl-ammonium lead iodide (CH(3)NH(3)PbI(3), MAPbI(3)) organic perovskite film was fabricated using a two-step sequential process on top of the poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) hole-transporting layer. Experimentally, water and potassium halides (KCl, KBr, and KI) were incorporated into the PbI(2) precursor solution. With only 2 vol% water, the cell efficiency was effectively improved. Without water, the addition of all of the three potassium halides unanimously degraded the performance of the solar cells, although the crystallinity was improved. Co-doping with KI and water showed a pronounced improvement in crystallinity and the elimination of carrier traps, yielding a power conversion efficiency (PCE) of 13.9%, which was approximately 60% higher than the pristine reference cell. The effect of metal halide and water co-doping in the PbI(2) layer on the performance of organic perovskite solar cells was studied. Raman and Fourier transform infrared spectroscopies indicated that a PbI(2)-dimethylformamide-water related adduct was formed upon co-doping. Photoluminescence enhancement was observed due to the co-doping of KI and water, indicating the defect density was reduced. Finally, the co-doping process was recommended for developing high-performance organic halide perovskite solar cells. MDPI 2019-04-27 /pmc/articles/PMC6566305/ /pubmed/31035582 http://dx.doi.org/10.3390/nano9050666 Text en © 2019 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
Wu, Hsuan-Ta
Cheng, Yu-Ting
Leu, Ching-Chich
Wu, Shih-Hsiung
Shih, Chuan-Feng
Improving Two-Step Prepared CH(3)NH(3)PbI(3) Perovskite Solar Cells by Co-Doping Potassium Halide and Water in PbI(2) Layer
title Improving Two-Step Prepared CH(3)NH(3)PbI(3) Perovskite Solar Cells by Co-Doping Potassium Halide and Water in PbI(2) Layer
title_full Improving Two-Step Prepared CH(3)NH(3)PbI(3) Perovskite Solar Cells by Co-Doping Potassium Halide and Water in PbI(2) Layer
title_fullStr Improving Two-Step Prepared CH(3)NH(3)PbI(3) Perovskite Solar Cells by Co-Doping Potassium Halide and Water in PbI(2) Layer
title_full_unstemmed Improving Two-Step Prepared CH(3)NH(3)PbI(3) Perovskite Solar Cells by Co-Doping Potassium Halide and Water in PbI(2) Layer
title_short Improving Two-Step Prepared CH(3)NH(3)PbI(3) Perovskite Solar Cells by Co-Doping Potassium Halide and Water in PbI(2) Layer
title_sort improving two-step prepared ch(3)nh(3)pbi(3) perovskite solar cells by co-doping potassium halide and water in pbi(2) layer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6566305/
https://www.ncbi.nlm.nih.gov/pubmed/31035582
http://dx.doi.org/10.3390/nano9050666
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