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简单的分子工程方法,用于增强热激活延迟荧光发射器的取向和外耦合效率,而不红移发射。

Simple Molecular-Engineering Approach for Enhancing Orientation and Outcoupling Efficiency of Thermally Activated Delayed Fluorescent Emitters without Red-Shifting Emission.

机构信息

Institute of Chemistry , Academia Sinica , Taipei 11529 , Taiwan.

Center for Organic Photonics and Electronics Research (OPERA), JST ERATO Adachi Molecular Exciton Engineering Project, and Education Center for Global Leaders in Molecular System for Devices and International Institute for Carbon Neutral Energy Research (WPI-I2CNER) , Kyushu University , 744 Motooka , Nishi, Fukuoka 819-0395 , Japan.

出版信息

ACS Appl Mater Interfaces. 2018 Dec 19;10(50):43842-43849. doi: 10.1021/acsami.8b16199. Epub 2018 Dec 6.

Abstract

The inclusion of a tetraphenylbenzene (4Ph) unit in thermally activated delayed fluorescence emitters is demonstrated as a novel strategy for greatly enhancing the horizontally oriented alignment of the emitters without shifting the emission spectrum to longer wavelengths. Doping of blue-emitting 4PhOXDDMAC or greenish-blue-emitting 4PhOXDPXZ into o-DiCbzBz host layers yielded much higher degrees of horizontally oriented alignment for the emitter (up to 92%) compared to those when the 4Ph unit was excluded (69 and 75%, respectively). The enhanced alignment results in high outcoupling efficiencies of 24 and 35% in organic light-emitting diodes based on 4PhOXDDMAC and 4PhOXDPXZ, respectively, and boosts the external quantum efficiencies to values (8.8 and 29.2%, respectively) that are higher than what would be expected for randomly oriented emitters (outcoupling efficiency of 20%). These enhancements are achieved while avoiding the redshift that often occurs using the common strategy of increasing molecular length and, thereby, conjugation, to increase orientation.

摘要

在热激活延迟荧光发射器中包含四苯乙烯(4Ph)单元被证明是一种新策略,可以在不将发射光谱移至更长波长的情况下,极大地增强发射器的水平取向排列。将蓝色发射的 4PhOXDDMAC 或蓝绿色发射的 4PhOXDPXZ 掺杂到 o-DiCbzBz 主体层中,与排除 4Ph 单元时相比,发射器的水平取向排列程度要高得多(分别高达 92%和 75%)。这种增强的排列导致基于 4PhOXDDMAC 和 4PhOXDPXZ 的有机发光二极管的外量子效率分别高达 24%和 35%,并且将外部量子效率提高到高于随机取向发射器的预期值(外量子效率为 20%)。在避免常见的增加分子长度和因此增加共轭来提高取向的策略通常会导致红移的情况下,实现了这些增强。

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