量子效率
有机发光二极管
苯甲腈
材料科学
系统间交叉
接受者
共发射极
光电子学
双极扩散
光致发光
咔唑
荧光
光化学
化学
图层(电子)
纳米技术
电子
光学
单重态
激发态
有机化学
物理
核物理学
量子力学
凝聚态物理
作者
Chia‐Hsun Chen,Shu Ling Lin,Bo‐Yen Lin,Che‐Yu Li,Yu-Cheng Kong,Yisheng Chen,Shao-Cheng Fang,Chien‐Ching Chiu,Jiun-Haw Lee,Ken‐Tsung Wong,Chi‐Feng Lin,Wen‐Yi Hung,Tien‐Lung Chiu
标识
DOI:10.1016/j.cej.2022.136292
摘要
Four bipolar molecules, namely m-CzPym, p-CzPym, m-CzTrz, and p-CzTrz, with carbazole (Cz) donor and a benzonitrile-substituted pyrimidine (Pym) or triazine (Trz) acceptor core were synthesized and characterized. The electron deficiency of heteroaryl cores together with the substitution pattern of benzonitrile were employed to tune the energy levels as well as the thermally activated delayed fluorescence (TADF) characteristics. The four molecules exhibited TADF behavior with inferior photoluminescent quantum yields (PLQYs) that limit their applications as emitters. These bipolar molecules were employed as TADF host materials for the benchmark TADF emitter 4CzIPN to achieve high-performing green TADF organic light-emitting diodes (OLEDs). Among the molecules, m-CzPym-hosted TADF-OLEDs achieved a maximum external quantum efficiency (EQEmax) of 31.5%, maximum power efficiency (PEmax) of 95.6 lm/W, and maximum current efficiency (CEmax) of 100.2 cd/A. Notably, p-CzPym-hosted TADF-OLEDs also achieved a PEmax of 116.5 lm/W, turn-on voltage of 2.5 V, and impressive low efficiency roll-off performance (>89% of EQEmax at 5000 cd/m2), representing one of the highest efficiencies ever reported in 4CzIPN-doped devices. The high device efficiency can be ascribed to the balanced ambipolar carrier-transporting character of the host materials and high PLQY as well as the outstanding light outcoupling efficiency of the emitting layer.
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