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Department of Energy Science and Engineering
Chemical & Energy Materials Engineering (CEME) Laboratory
1. Journal Articles
Stabilized Perovskite Quantum Dot Solids via Nonpolar Solvent Dispersible Covalent Ligands
Han, Sanghun
;
Seo, Gayoung
;
Yong, Taeyeong
;
Choi, Seongmin
;
Kim, Younghoon
;
Choi, Jongmin
Department of Energy Science and Engineering
Chemical & Energy Materials Engineering (CEME) Laboratory
1. Journal Articles
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Title
Stabilized Perovskite Quantum Dot Solids via Nonpolar Solvent Dispersible Covalent Ligands
Issued Date
2023-08
Citation
Han, Sanghun. (2023-08). Stabilized Perovskite Quantum Dot Solids via Nonpolar Solvent Dispersible Covalent Ligands. Advanced Science, 10(23). doi: 10.1002/advs.202301793
Type
Article
Author Keywords
covalent ligands
;
CsPbI3 perovskite quantum dots
;
nonpolar solvents
;
photovoltaic absorbers
;
solar cells
Keywords
SOLAR-CELLS
;
HALIDE PEROVSKITES
ISSN
2198-3844
Abstract
The ligand exchange procedure of CsPbI3 perovskite quantum dots (PQDs) enables the fabrication of thick and conductive PQD solids that act as a photovoltaic absorber for solution-processed thin-film solar cells. However, the ligand-exchanged CsPbI3 PQD solids suffer from deterioration in photovoltaic performance and ambient stability due to the surface traps, such as uncoordinated Pb2+ sites on the PQD surface, which are generated after the conventional ligand exchange process using ionic short-chain ligands dissolved in polar solvents. Herein, a facile surface stabilization is demonstrated that can simultaneously improve the photovoltaic performance and ambient stability of CsPbI3 PQD photovoltaic absorber using covalent short-chain triphenylphosphine oxide (TPPO) ligands dissolved in a nonpolar solvent. It is found that the TPPO ligand can be covalently bound to uncoordinated Pb2+ sites and the nonpolar solvent octane can completely preserve the PQD surface components. Owing to their synergetic effects, the CsPbI3 PQD photovoltaic absorber stabilized using the TPPO ligand solution dissolved in octane exhibit higher optoelectrical properties and ambient stability than the control absorber. Consequently, CsPbI3 PQD solar cells composed of PQD photovoltaic absorbers fabricated via surface stabilization strategy provide an improved power conversion efficiency of 15.4% and an enhanced device stability. © 2023 The Authors. Advanced Science published by Wiley-VCH GmbH.
URI
http://hdl.handle.net/20.500.11750/46092
DOI
10.1002/advs.202301793
Publisher
John Wiley and Sons Inc
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Choi, Jongmin
최종민
Department of Energy Science and Engineering
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