材料科学
光电子学
钙钛矿(结构)
Crystal(编程语言)
二极管
激子
发光二极管
量子效率
激光线宽
亮度
自发辐射
亮度
光致发光
卤化物
光子晶体
晶体生长
电致发光
受激发射
异质结
实现(概率)
单晶
光学
作者
Hua Chen,zhenwei ren,Yangyang Yu,Zhiyong Zheng,Xin Zhou,Bo Hu,Chengzhao Luo,Yu Chen
标识
DOI:10.1038/s41467-026-71292-4
摘要
Metal halide perovskite light-emitting diodes have exhibited great potential for the next-generation displays. However, the realization of highly efficient and bright pure-blue devices with narrow emission bandwidth remains a significant challenge. Herein, we propose a controllable crystal facet growth to diminish random crystal facet-correlated defects and reveal the underlying mechanism of energy-driven facet-selective crystal growth. This strategy enables high-quality pure-blue emitters with high crystallinity, low defects, and large exciton binding energy. Consequently, we achieve highly performing pure-blue devices with a narrow emission bandwidth of 14 nm, an external quantum efficiency of 14.0% at 1699 cd m−2, and an impressive peak brightness of 8334 cd m−2 at an emission of 473 nm. We verify a good applicability of the strategy in achieving high-performance sky-blue devices with a narrow emission of 15 nm, a high efficiency of 23.8%, and a large luminance of 13,230 cd m-2 at 488 nm. Chen et al. report a crystal regulation strategy for 3D perovskites by using functional molecule to adsorb to specific perovskite facets and diminish random crystal facet-correlated defects, yielding pure-blue LEDs with emission peak at 473 nm, linewidth of only 14 nm, and efficiency of 14%.
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