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Efficient and luminescent perovskite solar cells using defect-suppressed SnO2 via excess ligand strategy
  • Seo, Gabkyung ;
  • Yoo, Jason J. ;
  • Nam, Seongsik ;
  • Lee, Da Seul ;
  • Gao, Shanshan ;
  • Kim, Bo Kyung ;
  • Sung, Sae Jin ;
  • Kang, Bong Joo ;
  • deQuilettes, Dane W. ;
  • Park, Junho ;
  • Park, Ji Sang ;
  • Cho, In Sun ;
  • Rotermund, Fabian ;
  • Seok, Sang Il ;
  • Shin, Seong Sik
Citations

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Publication Year
2025-06-01
Journal
Nature Energy
Publisher
Nature Research
Citation
Nature Energy
Mesh Keyword
Chemical bath deposition methodsChemical-bath depositionElectron transport layersHigh-quality filmsHigher efficiencyLarger substratesSnO 2Surface coveragesSurface oxidationsUniform films
All Science Classification Codes (ASJC)
Electronic, Optical and Magnetic MaterialsRenewable Energy, Sustainability and the EnvironmentFuel TechnologyEnergy Engineering and Power Technology
Abstract
The deposition of electron-transport layers using chemical bath deposition (CBD) enables high efficiency in perovskite solar cells. However, the conventional CBD methods require time to achieve uniform films on large substrates and often fail to deposit high-quality films due to incomplete surface coverage and oxidation. Here we show an excess ligand strategy based on the CBD of tin oxide (SnO2), suppressing the cluster-by-cluster pathway while facilitating the ion-by-ion pathway to create uniform films. Our approach enables rapid synthesis of high-quality SnO2 electron-transport layers with reduced defect densities. The resulting SnO2 thin films exhibit superior optoelectronic properties, including a low surface-recombination velocity (5.5 cm s−1) and a high electroluminescence efficiency of 24.8%. These improvements result in a high power-conversion efficiency of 26.4% for perovskite solar cells, an efficiency of 23% for perovskite modules and an efficiency of 23.1% for carbon-based perovskite cells. This highlights its potential for the low-cost, large-scale production of efficient solar devices.
ISSN
2058-7546
Language
eng
URI
https://aurora.ajou.ac.kr/handle/2018.oak/38377
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=105007242383&origin=inward
DOI
https://doi.org/10.1038/s41560-025-01781-1
Journal URL
https://www.nature.com/nenergy/
Type
Article
Funding
S.S.S acknowledges support from the National Research Foundation of Korea (NRF) grant funded by the Korea government (MSIT) (RS-2024-00345042 and RS-2024-00445116). S.I.S acknowledges support from the Basic Science Research Program (RS-2018-NR030954) through the National Research Foundation of Korea (NRF) funded by the Ministry of Science, ICT & Future Planning (MSIP). We thank H.-E. Nam for her assistance in creating Fig. .
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Department of Materials Science Engineering
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