化学
硼
量子产额
系统间交叉
二极管
量子效率
电致发光
光致发光
光电子学
有机发光二极管
光化学
四烯
激发态
单重态
荧光
原子物理学
有机化学
光学
蒽
物理
图层(电子)
作者
Ting Yuan,Guimin Zhao,Diandong Tang,Xianzhi Song,Du Jian,Zhaoxi Yu,Yang Zhang,Laizhi Sui,Xiaohong Li,Yunchao Li,Lin Shen,Fanglong Yuan,Wei Jiang,Louzhen Fan
摘要
The development of eco-friendly solution-processed quantum dots plays an important role in the fabrication of electroluminescent light-emitting diodes (LEDs) for large-area display applications. However, the efficiency of these eco-friendly devices is still significantly lower than that of heavy metal-based state-of-the-art alternatives. Herein, we demonstrate metal-free carbon-based quantum materials: symmetric boron-bridged carbon quantum frameworks (sym-B-CQFs) composed of four dibenzo[fg,op]tetracene blocks bonded by boron atoms to form a rigid nonplanar conjugated framework. The sym-B-CQFs can deliver high-efficiency delayed fluorescence with a reverse intersystem crossing rate (kRISC) of 1.04 × 106 s-1 and 98 ± 0.6% total photoluminescence quantum yield. Experimental and theoretical analyses reveal that the nonplanar frameworks, originating from symmetric boron-bridges, lead to an alternate distribution of the frontier orbitals on different blocks and result in a small energy gap between the singlet and triplet excited states; this, in turn, increases kRISC. Solution processable LEDs based on sym-B-CQFs exhibit a record-high external quantum efficiency (EQE) of 20.4% and low efficiency roll-off (EQE = 18.0% at 1000 cd m-2). We anticipate that these high-performance carbon-based LEDs are highly suitable for next-generation large-area displays.
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