In situ growth strategy to construct perovskite quantum dot@covalent organic framework composites with enhanced water stability

Metal halide perovskite quantum dots (QDs) have excellent optoelectronic properties; however, their poor stability under water or thermal conditions remains an obstacle to commercialization. Here, we used a carboxyl functional group (-COOH) to enhance the ability of a covalent organic framework (COF...

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Veröffentlicht in:Nanotechnology 2023-06, Vol.34 (24), p.245601
Hauptverfasser: Zhang, Hongyan, He, Xiaoxiong, Wang, Hao, Chen, Liangjun, Xu, Gaopeng, Zhang, Nan, Qu, Kang, He, Qingquan, Peng, Yongwu, Pan, Jun
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Sprache:eng
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Zusammenfassung:Metal halide perovskite quantum dots (QDs) have excellent optoelectronic properties; however, their poor stability under water or thermal conditions remains an obstacle to commercialization. Here, we used a carboxyl functional group (-COOH) to enhance the ability of a covalent organic framework (COF) to adsorb lead ions and grow CH NH PbBr (MAPbBr ) QDs into a mesoporous carboxyl-functionalized COF to construct MAPbBr QDs@COF core-shell-like composites to improve the stability of perovskites. Owing to the protection of the COF, the as-prepared composites exhibited enhanced water stability, and the characteristic fluorescence was maintained for more than 15 d. These MAPbBr QDs@COF composites can be used to fabricate white light-emitting diodes with a color comparable to natural white emission. This work demonstrates the importance of functional groups for the growth of perovskite QDs, and coating with a porous structure is an effective way to improve the stability of metal halide perovskites.
ISSN:0957-4484
1361-6528
DOI:10.1088/1361-6528/acc1ec