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Development of Perovskite (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) Solar Cells via n-Octylammonium Iodide Surface Passivation

The influence of n-octylammonium iodide (OAI, passive layer) on the types of phases formed in a (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) perovskite film was studied using X-ray diffraction. Using UV spectrophotometric techniques, it was determined how varied OAI additive layer ratios affec...

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Autores principales: Osman, M. M., El-naggar, A. M., Alanazi, A. Q., Aldhafiri, A. M., Albassam, A. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10179917/
https://www.ncbi.nlm.nih.gov/pubmed/37177037
http://dx.doi.org/10.3390/nano13091492
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author Osman, M. M.
El-naggar, A. M.
Alanazi, A. Q.
Aldhafiri, A. M.
Albassam, A. A.
author_facet Osman, M. M.
El-naggar, A. M.
Alanazi, A. Q.
Aldhafiri, A. M.
Albassam, A. A.
author_sort Osman, M. M.
collection PubMed
description The influence of n-octylammonium iodide (OAI, passive layer) on the types of phases formed in a (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) perovskite film was studied using X-ray diffraction. Using UV spectrophotometric techniques, it was determined how varied OAI additive layer ratios affected the linear and nonlinear optical characteristics of glass substrates/FTO/compact TiO(2)/mesoporous TiO(2)/(MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) films. All films’ direct optical bandgap energies were determined to be 1.54 eV. The effects of OAI addition on the films’ photoluminescence intensity and emitted colors were also investigated. For the fabricated perovskite solar cells (PSCs) without an OAI passivation layer, the corresponding power conversion efficiency (PCE), open-circuit voltage (V(OC)), short-circuit current density (J(SC)), and fill factor (FF) values were 18.8%, 1.02 V, 24.6 mAcm(−2), and 75%, respectively. When the concentration of OAI reached 2 mg, the maximum obtained values of PCE, V(OC), J(SC), and FF were 20.2%, 1.06 V, 24.2 mAcm(−2), and 79%, respectively. The decreased trap density and increased recombination resistance were responsible for the improvement in solar cell performance.
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spelling pubmed-101799172023-05-13 Development of Perovskite (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) Solar Cells via n-Octylammonium Iodide Surface Passivation Osman, M. M. El-naggar, A. M. Alanazi, A. Q. Aldhafiri, A. M. Albassam, A. A. Nanomaterials (Basel) Article The influence of n-octylammonium iodide (OAI, passive layer) on the types of phases formed in a (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) perovskite film was studied using X-ray diffraction. Using UV spectrophotometric techniques, it was determined how varied OAI additive layer ratios affected the linear and nonlinear optical characteristics of glass substrates/FTO/compact TiO(2)/mesoporous TiO(2)/(MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) films. All films’ direct optical bandgap energies were determined to be 1.54 eV. The effects of OAI addition on the films’ photoluminescence intensity and emitted colors were also investigated. For the fabricated perovskite solar cells (PSCs) without an OAI passivation layer, the corresponding power conversion efficiency (PCE), open-circuit voltage (V(OC)), short-circuit current density (J(SC)), and fill factor (FF) values were 18.8%, 1.02 V, 24.6 mAcm(−2), and 75%, respectively. When the concentration of OAI reached 2 mg, the maximum obtained values of PCE, V(OC), J(SC), and FF were 20.2%, 1.06 V, 24.2 mAcm(−2), and 79%, respectively. The decreased trap density and increased recombination resistance were responsible for the improvement in solar cell performance. MDPI 2023-04-27 /pmc/articles/PMC10179917/ /pubmed/37177037 http://dx.doi.org/10.3390/nano13091492 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
Osman, M. M.
El-naggar, A. M.
Alanazi, A. Q.
Aldhafiri, A. M.
Albassam, A. A.
Development of Perovskite (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) Solar Cells via n-Octylammonium Iodide Surface Passivation
title Development of Perovskite (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) Solar Cells via n-Octylammonium Iodide Surface Passivation
title_full Development of Perovskite (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) Solar Cells via n-Octylammonium Iodide Surface Passivation
title_fullStr Development of Perovskite (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) Solar Cells via n-Octylammonium Iodide Surface Passivation
title_full_unstemmed Development of Perovskite (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) Solar Cells via n-Octylammonium Iodide Surface Passivation
title_short Development of Perovskite (MACl)(0.33)FA(0.99)MA(0.01)Pb(I(0.99)Br(0.01))(3) Solar Cells via n-Octylammonium Iodide Surface Passivation
title_sort development of perovskite (macl)(0.33)fa(0.99)ma(0.01)pb(i(0.99)br(0.01))(3) solar cells via n-octylammonium iodide surface passivation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10179917/
https://www.ncbi.nlm.nih.gov/pubmed/37177037
http://dx.doi.org/10.3390/nano13091492
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