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Modified SnO(2) with Alkali Carbonates as Robust Electron-Transport Layers for Inverted Organic Solar Cells

[Image: see text] We report for the first time that alkali carbonates (Li(2)CO(3), K(2)CO(3), and Rb(2)CO(3)) based on a low-temperature solution process can be used as interfacial modifiers for SnO(2) as robust electron-transport layers (ETL) for inverted organic solar cells (iOSCs). The room-tempe...

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Autores principales: Tran, Van-Huong, Park, Hanok, Eom, Seung Hun, Yoon, Sung Cheol, Lee, Soo-Hyoung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643860/
https://www.ncbi.nlm.nih.gov/pubmed/31458412
http://dx.doi.org/10.1021/acsomega.8b02773
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author Tran, Van-Huong
Park, Hanok
Eom, Seung Hun
Yoon, Sung Cheol
Lee, Soo-Hyoung
author_facet Tran, Van-Huong
Park, Hanok
Eom, Seung Hun
Yoon, Sung Cheol
Lee, Soo-Hyoung
author_sort Tran, Van-Huong
collection PubMed
description [Image: see text] We report for the first time that alkali carbonates (Li(2)CO(3), K(2)CO(3), and Rb(2)CO(3)) based on a low-temperature solution process can be used as interfacial modifiers for SnO(2) as robust electron-transport layers (ETL) for inverted organic solar cells (iOSCs). The room-temperature photoluminescence, the electron-only devices, and the impedance studies altogether suggested the interfacial properties of the alkali carbonates–modified SnO(2) ETLs, which were much better than those based on the SnO(2) only, provided efficient charge transport, and reduced the charge recombination rates for iOSCs. The iOSCs using the polymer donor poly[4,8-bis(5-(2-ethylhexyl)thiophen-2-yl)benzo[1,2-b;4,5-b′]dithiophene-2,6-diyl-alt-(4-(2-ethylhexyl)-3-fluorothieno[3,4-b]thiophene-)-2-carboxylate-2-6-diyl] and the fullerene acceptor phenyl-C(70)-butyric acid methyl ester as the active layer showed the average power-conversion efficiencies (PCEs) based on ten devices of 6.70, 6.85, and 7.35% with Li(2)CO(3)-, K(2)CO(3)-, and Rb(2)CO(3)-modified SnO(2) as ETLs, respectively; these are more than 22, 24, and 33% higher than those based on the SnO(2) only (5.49%). Moreover, these iOSC devices exhibited long-term stabilities, with over 90% PCEs remaining after the devices were stored in ambient air for 6 weeks without encapsulations. We believe that alkali carbonates–modified SnO(2) approaches are an effective way to achieve stable and highly efficient iOSCs and might also be suitable for other optoelectronic devices where an ETL is needed, such as perovskite solar cells or organic light-emitting diodes.
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spelling pubmed-66438602019-08-27 Modified SnO(2) with Alkali Carbonates as Robust Electron-Transport Layers for Inverted Organic Solar Cells Tran, Van-Huong Park, Hanok Eom, Seung Hun Yoon, Sung Cheol Lee, Soo-Hyoung ACS Omega [Image: see text] We report for the first time that alkali carbonates (Li(2)CO(3), K(2)CO(3), and Rb(2)CO(3)) based on a low-temperature solution process can be used as interfacial modifiers for SnO(2) as robust electron-transport layers (ETL) for inverted organic solar cells (iOSCs). The room-temperature photoluminescence, the electron-only devices, and the impedance studies altogether suggested the interfacial properties of the alkali carbonates–modified SnO(2) ETLs, which were much better than those based on the SnO(2) only, provided efficient charge transport, and reduced the charge recombination rates for iOSCs. The iOSCs using the polymer donor poly[4,8-bis(5-(2-ethylhexyl)thiophen-2-yl)benzo[1,2-b;4,5-b′]dithiophene-2,6-diyl-alt-(4-(2-ethylhexyl)-3-fluorothieno[3,4-b]thiophene-)-2-carboxylate-2-6-diyl] and the fullerene acceptor phenyl-C(70)-butyric acid methyl ester as the active layer showed the average power-conversion efficiencies (PCEs) based on ten devices of 6.70, 6.85, and 7.35% with Li(2)CO(3)-, K(2)CO(3)-, and Rb(2)CO(3)-modified SnO(2) as ETLs, respectively; these are more than 22, 24, and 33% higher than those based on the SnO(2) only (5.49%). Moreover, these iOSC devices exhibited long-term stabilities, with over 90% PCEs remaining after the devices were stored in ambient air for 6 weeks without encapsulations. We believe that alkali carbonates–modified SnO(2) approaches are an effective way to achieve stable and highly efficient iOSCs and might also be suitable for other optoelectronic devices where an ETL is needed, such as perovskite solar cells or organic light-emitting diodes. American Chemical Society 2018-12-27 /pmc/articles/PMC6643860/ /pubmed/31458412 http://dx.doi.org/10.1021/acsomega.8b02773 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Tran, Van-Huong
Park, Hanok
Eom, Seung Hun
Yoon, Sung Cheol
Lee, Soo-Hyoung
Modified SnO(2) with Alkali Carbonates as Robust Electron-Transport Layers for Inverted Organic Solar Cells
title Modified SnO(2) with Alkali Carbonates as Robust Electron-Transport Layers for Inverted Organic Solar Cells
title_full Modified SnO(2) with Alkali Carbonates as Robust Electron-Transport Layers for Inverted Organic Solar Cells
title_fullStr Modified SnO(2) with Alkali Carbonates as Robust Electron-Transport Layers for Inverted Organic Solar Cells
title_full_unstemmed Modified SnO(2) with Alkali Carbonates as Robust Electron-Transport Layers for Inverted Organic Solar Cells
title_short Modified SnO(2) with Alkali Carbonates as Robust Electron-Transport Layers for Inverted Organic Solar Cells
title_sort modified sno(2) with alkali carbonates as robust electron-transport layers for inverted organic solar cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643860/
https://www.ncbi.nlm.nih.gov/pubmed/31458412
http://dx.doi.org/10.1021/acsomega.8b02773
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