Spirally Configured cis‐Stilbene/fluorene (STIF), 10,11‐Benzo‐, and Imidazole‐fused STIF Hybrids as Electron‐Transporting Materials for Organic Light‐Emitting Diode Applications

轨道能级差 有机发光二极管 磷光有机发光二极管 材料科学 磷光 光化学 量子效率 电致发光 热稳定性 发光 光电子学 荧光 化学 聚合物 纳米技术 光学 有机化学 物理 分子 图层(电子) 复合材料
作者
Chien‐Tien Chen,Po‐Hsun Fang,Jia‐Hong Jou,Weihua Chen
出处
期刊:Chemistry-an Asian Journal [Wiley]
卷期号:18 (14) 被引量:2
标识
DOI:10.1002/asia.202300482
摘要

A new class of cis-stilbene/fluorene (STIF) and 10,11-benzo- and imidazole-fused dibenzosuberane/fluorene (Bz-STIF and Imd-STIF) spiro hybrid systems with paired cyanophenyl, pyridyl, and/or pyrimidyl units was synthesized as electron transporting materials (ETMs) for blue fluorescent OLEDs (FOLEDs) and phosphorescent organic light emitting diodes (PhOLEDs). Their photophysical (UV-Vis absorption and emission), electrochemical (Eox /Ered ), morphological (glassy transition temperature, Tg ), and thermal stability (decomposition temperature, Td ) properties are systematical compared. Their correlations regarding the effects of the fused unit/substituent(s) in the STIF core on the morphological/thermal stability, HOMO/LUMO energy level, π-electron distribution profiles by DFT calculations, and electron mobility are established. Blue FOLEDs are fabricated by using them and TmPyPB (a control) as ETMs. The effects of their LUMO energy levels and electron mobilities on the device turn-on voltage, performance efficiencies including external quantum efficiency/current efficiency (EQE/CE), power efficiency (PE), and device lifetime at 5% luminescence decay (T95 ) are correlated. Among them, three best ETMs and TmPyPB (a control) are selected for further green and blue PhOLED fabrications. The effects of their LUMO energy levels and electron mobilities on the device turn-on voltage and performance efficiencies are confirmed, allowing for potential commercial applications.
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