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The Design of Fused Amine/Carbonyl System for Efficient Thermally Activated Delayed Fluorescence: Novel Multiple Resonance Core and Electron Acceptor

DOI:10.1002/adom.201801536 期刊:Advanced Optical Materials 出版年份:2019 更新时间:2025-09-23 15:22:29
摘要: Multiple resonances induced thermally activated delayed fluorescence (MR-TADF) has great advantages in high color purity display. Up to now, current MR-TADF emitters are only based on the boron-nitrogen-containing fragment. Reported herein is a novel class of MR-TADF emitter, quinolino[3,2,1-de]acridine-5,9-dione (QAO), realized by the opposite resonance effect of the carbonyl and the nitrogen atoms, which is also the smallest TADF emitter reported so far. The QAO-based pure blue organic light-emitting diode achieves a maximum external quantum efficiency (EQEmax) of 19.4% with a small full width at half maximum of 39 nm. Moreover, tert-butyl modified QAO can be employed as an efficient electron acceptor to construct an efficient yellow-green evaporation and solution process feasible TADF emitter, 7-(tert-butyl)-3,11-bis(9,9-dimethylacridin-10(9H)-yl)quinolino[3,2,1-de]acridine-5,9-dione (QAO-DAd), with significantly improved performance as compared to the previous flexible diketone-based emitters.
作者: Yi Yuan,Xun Tang,Xiao-Yang Du,Yun Hu,You-Jun Yu,Zuo-Quan Jiang,Liang-Sheng Liao,Shuit-Tong Lee
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To design a novel multiple resonance core and electron acceptor for efficient thermally activated delayed fluorescence in organic light-emitting diodes, addressing the limitations of current MR-TADF emitters based only on boron-nitrogen fragments.

The fused amine/carbonyl core QAO exhibits MR-TADF with narrow emission and high efficiency in blue OLEDs, representing the smallest TADF emitter reported. Its derivative QAO-DAd serves as an efficient acceptor for conventional TADF emitters, achieving high efficiencies in both evaporation and solution-processed devices, significantly improving upon previous aromatic diketone-based emitters. This work demonstrates a promising strategy for designing new efficient TADF materials.

The QAO emitter suffers from efficiency roll-off at high brightness due to close packing from its highly planar configuration. The study is limited to specific molecular designs and may not generalize to other systems. Further optimization is needed for improved performance.

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