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SN2-mediated decoupled precursor provision enables large-scale production of monodisperse lead halide perovskite quantum dots in a single reactor
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- Title
- SN2-mediated decoupled precursor provision enables large-scale production of monodisperse lead halide perovskite quantum dots in a single reactor
- Issued Date
- 2025-02
- Citation
- Kim, Jigeon. (2025-02). SN2-mediated decoupled precursor provision enables large-scale production of monodisperse lead halide perovskite quantum dots in a single reactor. Advanced Composites and Hybrid Materials, 8(1). doi: 10.1007/s42114-025-01229-w
- Type
- Article
- Author Keywords
- Nucleophilic substitution reactions ; Large-scale synthesis ; Nucleation and crystal growth ; Perovskite nanocrystals ; Alkyl halides
- Keywords
- ELASTIC BAND METHOD ; CSPBBR3 NANOCRYSTALS ; COLLOIDAL SYNTHESIS ; ENERGY-TRANSFER ; GROWTH ; BASE ; ACID ; SIZE
- ISSN
- 2522-0128
- Abstract
-
Quantum-confined lead-halide perovskite nanocrystals (QPNCs) are a promising optoelectronic semiconductor owing to their exceptional fluorescence and the size- and dimension-tunable optical properties. QPNCs having low formation energy encounter challenges in accurately regulating the nucleation and crystal growth stages during injection-based syntheses using lead halide reagents. Here, we introduce a non-injection, one-pot synthetic approach based on bimolecular nucleophilic substitution (SN2) and thermolysis reactions of the decoupled metal and halide precursors for the large-scale production of monodisperse CsPbX3-QPNCs (X = Cl, Br, I). This approach facilitates a homogeneous supply of halide anions and metal cations, enabling the precise control over the nucleation and crystal growth stages in the isolated size-focused region. Monodisperse CsPbX3-QPNCs achieve high color purity across the RGB color gamut by adjusting size, dimensionality, and halide composition, and can be produced on an ultra-large scale.
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- Publisher
- Springer Nature
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