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咪唑并[1,2 - ]哒嗪作为高性能红色磷光有机发光器件主体材料的构建单元

Imidazo[1,2-]pyridazine as Building Blocks for Host Materials for High-Performance Red-Phosphorescent Organic Light-Emitting Devices.

作者信息

Song Wenxuan, Xu Qihao, Zhu Jiangnan, Chen Yi, Mu Haichuan, Huang Jinhai, Su Jianhua

机构信息

Key Laboratory for Advanced Materials and Feringa Nobel Prize Scientist Joint Research Center, Institute of Fine Chemicals, School of Chemistry & Molecular Engineering, East China University of Science & Technology, 130 Meilong Road, Shanghai 200237, P. R. China.

Department of Physics, School of Science, East China University of Science & Technology, Shanghai 200237, PR China.

出版信息

ACS Appl Mater Interfaces. 2020 Apr 29;12(17):19701-19709. doi: 10.1021/acsami.9b22060. Epub 2020 Apr 16.

Abstract

A novel electron-transporting unit, imidazo [1,2-]pyridazine (IP), was first reported for developing host materials. The IP moiety possesses excellent electron-transporting ability and great thermal stability. Using carbazole as p-type units and IP as n-type units, several bipolar host materials, namely, IP6Cz, IP68Cz, IP36Cz, and IP368Cz, were developed through altering the substitution site of the IP core. Among these four materials, 6-site-substituted IP6Cz and 6,8-site-substituted IP68Cz exhibit the best electroluminescence (EL) performance. IP6Cz- and IP68Cz-based red phosphorescent organic light-emitting diodes using Ir(pq)acac as the emitter exhibit extremely high EL efficiency with the maximum external quantum efficiency (η) of 26.9 and 25.2% and an insignificant efficiency roll-off. Moreover, IP6Cz- and IP68Cz-based deep-red devices doped by Ir(piq)acac also show satisfactory EL performance with a η of 20.5 and 19.9%, respectively. The influence of different substitution sites of the IP core on the photophysical and electrochemical properties was systematically investigated. This study demonstrates that IP could be a first-rate electron-transporting unit for bipolar materials for red-emitting devices.

摘要

一种新型电子传输单元咪唑并[1,2 - ]哒嗪(IP)首次被报道用于开发主体材料。IP部分具有优异的电子传输能力和良好的热稳定性。以咔唑作为p型单元,IP作为n型单元,通过改变IP核心的取代位点,开发了几种双极性主体材料,即IP6Cz、IP68Cz、IP36Cz和IP368Cz。在这四种材料中,6位取代的IP6Cz和6,8位取代的IP68Cz表现出最佳的电致发光(EL)性能。以Ir(pq)acac作为发光体的基于IP6Cz和IP68Cz的红色磷光有机发光二极管表现出极高的EL效率,最大外量子效率(η)分别为26.9%和25.2%,且效率滚降不明显。此外,由Ir(piq)acac掺杂的基于IP6Cz和IP68Cz的深红色器件也分别表现出令人满意的EL性能,η分别为20.5%和19.9%。系统研究了IP核心不同取代位点对光物理和电化学性质的影响。该研究表明,IP可能是用于红色发光器件的双极性材料的一流电子传输单元。

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