Delayed Halide‐Rich Molecular Passivation of CsPbCl 3 Perovskite Nanocrystals Enables Bright Violet Light‐Emitting Diodes
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Peer-reviewed
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Abstract
ABSTRACT
CsPbCl
3
perovskite nanocrystals (NCs) are promising violet emitters owing to their narrow emission and high color purity, but their low defect tolerance demands careful passivation to achieve high photoluminescence quantum yield (PLQY), and typically only for fresh CsPbCl
3
NCs. Here, we report a delayed dual‐passivation pathway in CsPbCl
3
NCs induced by the halide‐rich molecular reagent phosphorus oxychloride (POCl
3
), which unexpectedly yields a strong time‐dependent PLQY enhancement instead of the rapid degradation usually observed. POCl
3
gradually decomposes into P‐ and Cl‐containing species, enabling a controlled release of excess halides that autonomously passivates halide vacancies in a self‐regulated manner. This dynamic self‐healing process boosts the PLQY of colloidal CsPbCl
3
NCs by over 40‐fold relative to pristine samples and sustains high violet emission efficiencies for more than 2 months of storage under ambient conditions. Spectroscopic measurements and calculations indicate that both liberated Cl
−
and in situ—formed phosphonic species passivate halide vacancies and Pb
2
+
dangling bonds, suppressing mid‐gap defect states. The resulting self‐passivated NCs deliver a luminance of 409 cd m
−
2
, the highest reported for CsPbCl
3
‐based violet emitters. These results establish halide‐rich dual passivators such as POCl
3
as powerful tools for long‐term defect control in chloride perovskite NCs and for robust, bright violet‐LEDs.
Description
Publication status: Published
Funder: St. John's College, Oxford
Funder: John Fell/Oxford University Press Research Fund
Funder: Fundamental Research Funds for the Central Universities; doi: https://doi.org/10.13039/501100012226
Journal Title
Angewandte Chemie
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Journal ISSN
0044-8249
1521-3757
1521-3757
Volume Title
Publisher
Wiley
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Except where otherwised noted, this item's license is described as http://creativecommons.org/licenses/by/4.0/
Sponsorship
Spanish Ministerio de Ciencia e Innovación (RYC2018‐026103‐I)
EIC PATHFINDER CHALLEGNE3S project (101162112)
Xunta de Galicia/ERDF (ED431f2021/05)
MICIU/AEI (10.13039/501100011033)
ERDF/EU (PID2023‐147567NB‐I00, TED2021‐131628A‐I00, CNS2022‐135531)
National Research Foundation of Korea (RS‐2025‐00516815)
UK Research and Innovation for a Frontier Grant (EP/X029900/1)
Royal Academy of Engineering and Science & Technology Facilities Council (RCSRF/2324‐18‐68)
National Key R&D Program of China (2023YFA1610000)
National Natural Science Foundation of China (12304036)
Guangdong Basic and Applied Basic Research Foundation (2026A1515012397)
South China University of Technology the Fundamental Research Funds of State Key Laboratory of Luminescent Materials and Devices (Skllmd‐2025‐14)
Sun Yat‐sen University (74130–31610059)
EIC PATHFINDER CHALLEGNE3S project (101162112)
Xunta de Galicia/ERDF (ED431f2021/05)
MICIU/AEI (10.13039/501100011033)
ERDF/EU (PID2023‐147567NB‐I00, TED2021‐131628A‐I00, CNS2022‐135531)
National Research Foundation of Korea (RS‐2025‐00516815)
UK Research and Innovation for a Frontier Grant (EP/X029900/1)
Royal Academy of Engineering and Science & Technology Facilities Council (RCSRF/2324‐18‐68)
National Key R&D Program of China (2023YFA1610000)
National Natural Science Foundation of China (12304036)
Guangdong Basic and Applied Basic Research Foundation (2026A1515012397)
South China University of Technology the Fundamental Research Funds of State Key Laboratory of Luminescent Materials and Devices (Skllmd‐2025‐14)
Sun Yat‐sen University (74130–31610059)

