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High-Performance Perovskite Quantum Dot Solar Cells Enabled by Incorporation with Dimensionally Engineered Organic Semiconductoroa mark
  • Lim, Seyeong ;
  • Lee, Dae Hwan ;
  • Choi, Hyuntae ;
  • Choi, Yelim ;
  • Lee, Dong Geon ;
  • Cho, Sung Beom ;
  • Ko, Seonkyung ;
  • Choi, Jongmin ;
  • Kim, Younghoon ;
  • Park, Taiho
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dc.contributor.authorLim, Seyeong-
dc.contributor.authorLee, Dae Hwan-
dc.contributor.authorChoi, Hyuntae-
dc.contributor.authorChoi, Yelim-
dc.contributor.authorLee, Dong Geon-
dc.contributor.authorCho, Sung Beom-
dc.contributor.authorKo, Seonkyung-
dc.contributor.authorChoi, Jongmin-
dc.contributor.authorKim, Younghoon-
dc.contributor.authorPark, Taiho-
dc.date.issued2022-12-01-
dc.identifier.urihttps://dspace.ajou.ac.kr/dev/handle/2018.oak/32998-
dc.description.abstractPerovskite quantum dots (PQDs) have been considered promising and effective photovoltaic absorber due to their superior optoelectronic properties and inherent material merits combining perovskites and QDs. However, they exhibit low moisture stability at room humidity (20–30%) owing to many surface defect sites generated by inefficient ligand exchange process. These surface traps must be re-passivated to improve both charge transport ability and moisture stability. To address this issue, PQD-organic semiconductor hybrid solar cells with suitable electrical properties and functional groups might dramatically improve the charge extraction and defect passivation. Conventional organic semiconductors are typically low-dimensional (1D and 2D) and prone to excessive self-aggregation, which limits chemical interaction with PQDs. In this work, we designed a new 3D star-shaped semiconducting material (Star-TrCN) to enhance the compatibility with PQDs. The robust bonding with Star-TrCN and PQDs is demonstrated by theoretical modeling and experimental validation. The Star-TrCN-PQD hybrid films show improved cubic-phase stability of CsPbI3-PQDs via reduced surface trap states and suppressed moisture penetration. As a result, the resultant devices not only achieve remarkable device stability over 1000 h at 20–30% relative humidity, but also boost power conversion efficiency up to 16.0% via forming a cascade energy band structure.[Figure not available: see fulltext.]-
dc.description.sponsorship2D-GIWAXS measurements were taken at a synchrotron radiation on the beamline 9A at the Pohang Accelerator Laboratory (PAL), Korea. This work was supported by National Research Foundation of Korea (NRF) grants funded by Ministry of Science and ICT (MSIT) (Nos. 2021R1A2C3004420, 2022M3J1A1085282, 2020R1C1C1012256 and 2020R1C1C1003214) and the NRF of Korea grant funded by the Korean Government (NRF-2019-Global Ph.D. Fellowship Program.-
dc.language.isoeng-
dc.publisherSpringer Science and Business Media B.V.-
dc.subject.meshCell stability-
dc.subject.meshCsPbI3 quantum dot-
dc.subject.meshHigh-efficiency photovoltaic-
dc.subject.meshHigher efficiency-
dc.subject.meshHybrid perovskite quantum dot-
dc.subject.meshMoisture stability-
dc.subject.meshPerformance-
dc.subject.meshPhotovoltaics-
dc.subject.meshSolar cell stability-
dc.subject.meshStar-shaped organic semiconductors-
dc.titleHigh-Performance Perovskite Quantum Dot Solar Cells Enabled by Incorporation with Dimensionally Engineered Organic Semiconductor-
dc.typeArticle-
dc.citation.titleNano-Micro Letters-
dc.citation.volume14-
dc.identifier.bibliographicCitationNano-Micro Letters, Vol.14-
dc.identifier.doi10.1007/s40820-022-00946-x-
dc.identifier.scopusid2-s2.0-85140031848-
dc.identifier.urlhttp://www.springer.com/engineering/journal/40820-
dc.subject.keywordCsPbI3 quantum dots-
dc.subject.keywordHigh-efficiency photovoltaics-
dc.subject.keywordHybrid perovskite quantum dots-
dc.subject.keywordSolar cell stability-
dc.subject.keywordStar-shaped organic semiconductors-
dc.description.isoatrue-
dc.subject.subareaElectronic, Optical and Magnetic Materials-
dc.subject.subareaSurfaces, Coatings and Films-
dc.subject.subareaElectrical and Electronic Engineering-
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