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Utilizing a Spiro Core with Acridine- and Phenothiazine-Based New Hole Transporting Materials for Highly Efficient Green Phosphorescent Organic Light-Emitting Diodes

机译:利用基于ro啶和吩噻嗪的新型空穴传输材料的螺环芯获得高效的绿色磷光有机发光二极管

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摘要

Two new hole transporting materials, 2,7-bis(9,9-diphenylacridin-10(9H)-yl)-9,9′ spirobi[fluorene] (SP1) and 2,7-di(10H-phenothiazin-10-yl)-9,9′-spirobi[fluorene] (SP2), were designed and synthesized by using the Buchwald–Hartwig coupling reaction with a high yield percentage of over 84%. Both of the materials exhibited high glass transition temperatures of over 150 °C. In order to understand the device performances, we have fabricated green phosphorescent organic light-emitting diodes (PhOLEDs) with SP1 and SP2 as hole transporting materials. Both of the materials revealed improved device properties, in particular, the SP2-based device showed excellent power (34.47 lm/W) and current (38.41 cd/A) efficiencies when compare with the 4,4′-bis(N-phenyl-1-naphthylamino)biphenyl (NPB)-based reference device (30.33 lm/W and 32.83 cd/A). The external quantum efficiency (EQE) of SP2 was 13.43%, which was higher than SP1 (13.27%) and the reference material (11.45%) with a similar device structure. The SP2 hole transporting material provides an effective charge transporting path from anode to emission layer, which is explained by the device efficiencies.
机译:两种新型的空穴传输材料,2,7-双(9,9-二苯基ac啶-10(9H)-基)-9,9'螺双[芴](SP1)和2,7-二(10H-吩噻嗪-10-) yl)-9,9'-spirbibi [芴](SP2),是使用Buchwald-Hartwig偶联反应设计并合成的,产率高达84%以上。两种材料均表现出超过150°C的高玻璃化转变温度。为了了解器件的性能,我们制造了以SP1和SP2作为空穴传输材料的绿色磷光有机发光二极管(PhOLED)。两种材料均显示出改善的器件性能,特别是与4,4'-bis(N-苯基-)相比,基于SP2的器件显示出出色的功率(34.47 lm / W)和电流(38.41 cd / A)效率。基于1-萘氨基)联苯(NPB)的参考设备(30.33 lm / W和32.83 cd / A)。 SP2的外部量子效率(EQE)为13.43%,高于具有相似器件结构的SP1(13.27%)和参考材料(11.45%)。 SP2空穴传输材料提供了从阳极到发射层的有效电荷传输路径,这可以通过器件效率来解释。

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