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CsPbBr 3 ‐Quantum‐Dots/Polystyrene@Silica Hybrid Microsphere Structures with Significantly Improved Stability for White LEDs
Author(s) -
Yang Weiqiang,
Gao Fei,
Qiu Yue,
Liu Weizhen,
Xu Haiyang,
Yang Lili,
Liu Yichun
Publication year - 2019
Publication title -
advanced optical materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.89
H-Index - 91
ISSN - 2195-1071
DOI - 10.1002/adom.201900546
Subject(s) - materials science , quantum dot , quantum yield , photoluminescence , light emitting diode , diode , electroluminescence , optoelectronics , polystyrene , luminescence , phosphor , halide , nanotechnology , chemical engineering , fluorescence , composite material , polymer , inorganic chemistry , optics , layer (electronics) , chemistry , physics , engineering
Abstract Cesium‐lead‐halide perovskite quantum dots (PQDs), which have superior optical and electronic properties, are regarded as excellent materials for various optoelectronic devices. However, their unstable nature greatly hinders their practical application. Herein, a simple hydrolysis encapsulation method is developed to embed PQDs into mesoporous polystyrene microspheres (MPMs) followed by a silica shell covering process, which generates luminescent PQDs/MPMs@SiO 2 hybrid microspheres with significantly enhanced stability. The obtained CsPbBr 3 ‐PQDs/MPMs@SiO 2 hybrid microspheres show a high photoluminescence quantum yield of 84%. More importantly, the MPMs@silica protective shells effectively cut off direct contact between outer erosive species and the inner embedded PQDs and modify the hybrid microspheres with ultralong alkyl chains for improved resistance to solvents and heat. Hence, these CsPbBr 3 ‐PQDs/MPMs@SiO 2 hybrid microspheres exhibit good chemical/physical stabilities, even when exposed to harsh environments, such as deionized water, isopropanol, acid/alkali solution, anion‐exchange reactions, and heating. Particularly, the water stability, which produced the remaining ≈48% proportion of the initial fluorescence intensity after a quite long aqueous storage period of 30 d, is the best reported among the stability‐related studies of PQDs. Meanwhile, white light‐emitting diodes (LEDs) are achieved by mixing green CsPbBr 3 ‐PQDs/MPMs@SiO 2 microspheres with red commercial phosphors on a blue chip. High power efficiency of 81 lm W −1 and good electroluminescence stability are obtained.