Manipulating Local Lattice Distortion for Spectrally Stable and Efficient Mixed‐halide Blue Perovskite LEDs

Mixed‐halide perovskites are considered the most straightforward candidate to realize blue perovskite light‐emitting diodes (PeLEDs). However, they suffer severe halide migration, leading to spectral instability, which is particularly exaggerated in high chloride alloying perovskites. Here, we demon...

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Veröffentlicht in:Angewandte Chemie International Edition 2023-05, Vol.62 (21), p.e202302184-n/a
Hauptverfasser: Zhang, Li, Jiang, Yuanzhi, Feng, Yanxing, Cui, Minghuan, Li, Saisai, Fu, Xinliang, Hsu, Hsien‐Yi, Qin, Chaochao, Yuan, Mingjian
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Sprache:eng
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Zusammenfassung:Mixed‐halide perovskites are considered the most straightforward candidate to realize blue perovskite light‐emitting diodes (PeLEDs). However, they suffer severe halide migration, leading to spectral instability, which is particularly exaggerated in high chloride alloying perovskites. Here, we demonstrate energy barrier of halide migration can be tuned by manipulating the degree of local lattice distortion (LLD). Enlarging the LLD degree to a suitable level can increase the halide migration energy barrier. We herein report an “A‐site” cation engineering to tune the LLD degree to an optimal level. DFT simulation and experimental data confirm that LLD manipulation suppresses the halide migration in perovskites. Conclusively, mixed‐halide blue PeLEDs with a champion EQE of 14.2 % at 475 nm have been achieved. Moreover, the devices exhibit excellent operational spectral stability (T50 of 72 min), representing one of the most efficient and stable pure‐blue PeLEDs reported yet. A new local lattice distortion (LLD) manipulation strategy was demonstrated to suppress the halide migration in mixed‐halide perovskite. DFT simulation and experimental data confirm that the LLD manipulation effectively suppresses the halide migration in perovskites. Mixed‐halide blue PeLED with champion EQE of 14.2 % at 475 nm and impressive T50 of 72 min has been achieved, representing the state‐of‐the‐art pure‐blue PeLEDs.
ISSN:1433-7851
1521-3773
DOI:10.1002/anie.202302184