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Triphenylamine-functionalized tetraphenylpyrazine: facile preparation and multifaceted functionalities

机译:三苯胺官能化的四苯基吡嗪:简便的制备方法和多方面的功能

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Aggregation-induced emission (AIE) is a unique photo-physical phenomenon and has become an emerging and hot research area. With the enthusiastic efforts paid by researchers, hundreds of AIE-active luminogens (AIEgens) have been generated but heterocyclic AIEgens are rarely reported. Recently, we enriched the family of AIEgens and reported a pyrazine-based AIEgen of tetraphenylpyrazine (TPP), which could be facilely functionalized by a post-synthetic strategy. In this work, we further expanded the TPP-based AIE system by covalently attaching one, two or four electron-donating triphenylamine moieties to the TPP core via Suzuki coupling, and TPP-TPA, TPP-2TPA and TPP-4TPA were produced, respectively. Thanks to their donor-pi-acceptor structures, these luminogens exhibit multifunctional properties, such as excellent thermal stability (up to 504 degrees C), large molar absorptivity, bright emission in the solid state (quantum yields up to 35.2%), solvatochromism, and high two-photon absorption cross-sections (up to 480 GM). Furthermore, using TPP-TPA as the emitting layer, a triple-layer device was fabricated and a turn-on voltage, maximum luminance, current efficiency, power efficiency, and external quantum efficiency of 3.7 V, 17 459 cd m(-2), 5.49 cd A(-1), 3.18 lm W-1 and 2.88% were realized, respectively. These results indicate a huge potential to develop high-tech applications based on these TPP-based AIEgens.
机译:聚集诱导发射(AIE)是一种独特的光物理现象,已成为新兴和热门的研究领域。在研究人员的积极努力下,已经产生了数百种AIE活性发光剂(AIEgens),但很少报道杂环AIEgens。最近,我们丰富了AIEgens家族,并报告了基于吡嗪的四苯基吡嗪(TPP)的AIEgen,可以通过合成后策略轻松实现功能化。在这项工作中,我们进一步扩展了基于TPP的AIE系统,方法是通过Suzuki偶联将一个,两个或四个供电子三苯胺部分共价连接到TPP核上,分别生产了TPP-TPA,TPP-2TPA和TPP-4TPA 。由于它们的供体-π-受体结构,这些发光剂具有多功能特性,例如出色的热稳定性(高达504摄氏度),大的摩尔吸收率,固态下的明亮发射(量子产率高达35.2%),溶剂化变色,高光子吸收截面(高达480 GM)。此外,使用TPP-TPA作为发光层,制造了三层器件,其开启电压,最大亮度,电流效率,功率效率和3.7 V,17 459 cd m(-2)的外部量子效率,分别实现了5.49 cd A(-1),3.18 lm W-1和2.88%。这些结果表明,基于这些基于TPP的AIEgens开发高科技应用的巨大潜力。

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