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Scalable PbS Quantum Dot Solar Cell Production by Blade Coating from Stable Inks

[Image: see text] The recent development of phase transfer ligand exchange methods for PbS quantum dots (QD) has enhanced the performance of quantum dots solar cells and greatly simplified the complexity of film deposition. However, the dispersions of PbS QDs (inks) used for film fabrication often s...

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Autores principales: Sukharevska, Nataliia, Bederak, Dmytro, Goossens, Vincent M., Momand, Jamo, Duim, Herman, Dirin, Dmitry N., Kovalenko, Maksym V., Kooi, Bart J., Loi, Maria A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7863069/
https://www.ncbi.nlm.nih.gov/pubmed/33470785
http://dx.doi.org/10.1021/acsami.0c18204
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author Sukharevska, Nataliia
Bederak, Dmytro
Goossens, Vincent M.
Momand, Jamo
Duim, Herman
Dirin, Dmitry N.
Kovalenko, Maksym V.
Kooi, Bart J.
Loi, Maria A.
author_facet Sukharevska, Nataliia
Bederak, Dmytro
Goossens, Vincent M.
Momand, Jamo
Duim, Herman
Dirin, Dmitry N.
Kovalenko, Maksym V.
Kooi, Bart J.
Loi, Maria A.
author_sort Sukharevska, Nataliia
collection PubMed
description [Image: see text] The recent development of phase transfer ligand exchange methods for PbS quantum dots (QD) has enhanced the performance of quantum dots solar cells and greatly simplified the complexity of film deposition. However, the dispersions of PbS QDs (inks) used for film fabrication often suffer from colloidal instability, which hinders large-scale solar cell production. In addition, the wasteful spin-coating method is still the main technique for the deposition of QD layer in solar cells. Here, we report a strategy for scalable solar cell fabrication from highly stable PbS QD inks. By dispersing PbS QDs capped with CH(3)NH(3)PbI(3) in 2,6-difluoropyridine (DFP), we obtained inks that are colloidally stable for more than 3 months. Furthermore, we demonstrated that DFP yields stable dispersions even of large diameter PbS QDs, which are of great practical relevance owing to the extended coverage of the near-infrared region. The optimization of blade-coating deposition of DFP-based inks enabled the fabrication of PbS QD solar cells with power conversion efficiencies of up to 8.7%. It is important to underline that this performance is commensurate with the devices made by spin coating of inks with the same ligands. A good shelf life-time of these inks manifests itself in the comparatively high photovoltaic efficiency of 5.8% obtained with inks stored for more than 120 days.
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spelling pubmed-78630692021-02-05 Scalable PbS Quantum Dot Solar Cell Production by Blade Coating from Stable Inks Sukharevska, Nataliia Bederak, Dmytro Goossens, Vincent M. Momand, Jamo Duim, Herman Dirin, Dmitry N. Kovalenko, Maksym V. Kooi, Bart J. Loi, Maria A. ACS Appl Mater Interfaces [Image: see text] The recent development of phase transfer ligand exchange methods for PbS quantum dots (QD) has enhanced the performance of quantum dots solar cells and greatly simplified the complexity of film deposition. However, the dispersions of PbS QDs (inks) used for film fabrication often suffer from colloidal instability, which hinders large-scale solar cell production. In addition, the wasteful spin-coating method is still the main technique for the deposition of QD layer in solar cells. Here, we report a strategy for scalable solar cell fabrication from highly stable PbS QD inks. By dispersing PbS QDs capped with CH(3)NH(3)PbI(3) in 2,6-difluoropyridine (DFP), we obtained inks that are colloidally stable for more than 3 months. Furthermore, we demonstrated that DFP yields stable dispersions even of large diameter PbS QDs, which are of great practical relevance owing to the extended coverage of the near-infrared region. The optimization of blade-coating deposition of DFP-based inks enabled the fabrication of PbS QD solar cells with power conversion efficiencies of up to 8.7%. It is important to underline that this performance is commensurate with the devices made by spin coating of inks with the same ligands. A good shelf life-time of these inks manifests itself in the comparatively high photovoltaic efficiency of 5.8% obtained with inks stored for more than 120 days. American Chemical Society 2021-01-20 2021-02-03 /pmc/articles/PMC7863069/ /pubmed/33470785 http://dx.doi.org/10.1021/acsami.0c18204 Text en © 2021 The Authors. Published by American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Sukharevska, Nataliia
Bederak, Dmytro
Goossens, Vincent M.
Momand, Jamo
Duim, Herman
Dirin, Dmitry N.
Kovalenko, Maksym V.
Kooi, Bart J.
Loi, Maria A.
Scalable PbS Quantum Dot Solar Cell Production by Blade Coating from Stable Inks
title Scalable PbS Quantum Dot Solar Cell Production by Blade Coating from Stable Inks
title_full Scalable PbS Quantum Dot Solar Cell Production by Blade Coating from Stable Inks
title_fullStr Scalable PbS Quantum Dot Solar Cell Production by Blade Coating from Stable Inks
title_full_unstemmed Scalable PbS Quantum Dot Solar Cell Production by Blade Coating from Stable Inks
title_short Scalable PbS Quantum Dot Solar Cell Production by Blade Coating from Stable Inks
title_sort scalable pbs quantum dot solar cell production by blade coating from stable inks
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7863069/
https://www.ncbi.nlm.nih.gov/pubmed/33470785
http://dx.doi.org/10.1021/acsami.0c18204
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