材料科学
共发射极
分子内力
有机发光二极管
量子产额
咔唑
荧光
量子效率
接受者
系统间交叉
光化学
光电子学
单重态
振荡器强度
纳米技术
原子物理学
化学
立体化学
激发态
光学
物理
天文
凝聚态物理
图层(电子)
谱线
作者
Xiankai Chen,Youichi Tsuchiya,Yuma Ishikawa,Cheng Zhong,Chihaya Adachi,Jean‐Luc Brédas
标识
DOI:10.1002/adma.201702767
摘要
In the traditional molecular design of thermally activated delayed fluorescence (TADF) emitters composed of electron-donor and electron-acceptor moieties, achieving a small singlet-triplet energy gap (ΔEST ) in strongly twisted structures usually translates into a small fluorescence oscillator strength, which can significantly decrease the emission quantum yield and limit efficiency in organic light-emitting diode devices. Here, based on the results of quantum-chemical calculations on TADF emitters composed of carbazole donor and 2,4,6-triphenyl-1,3,5-triazine acceptor moieties, a new strategy is proposed for the molecular design of efficient TADF emitters that combine a small ΔEST with a large fluorescence oscillator strength. Since this strategy goes beyond the traditional framework of structurally twisted, charge-transfer type emitters, importantly, it opens the way for coplanar molecules to be efficient TADF emitters. Here, a new emitter, composed of azatriangulene and diphenyltriazine moieties, is theoretically designed, which is coplanar due to intramolecular H-bonding interactions. The synthesis of this hexamethylazatriangulene-triazine (HMAT-TRZ) emitter and its preliminary photophysical characterizations point to HMAT-TRZ as a potential efficient TADF emitter.
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