首页> 美国卫生研究院文献>Scientific Reports >Mulifunctional Dendritic Emitter: Aggregation-Induced Emission Enhanced Thermally Activated Delayed Fluorescent Material for Solution-Processed Multilayered Organic Light-Emitting Diodes
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Mulifunctional Dendritic Emitter: Aggregation-Induced Emission Enhanced Thermally Activated Delayed Fluorescent Material for Solution-Processed Multilayered Organic Light-Emitting Diodes

机译:多功能树突状发射体:用于溶液处理的多层有机发光二极管的聚集诱导发射增强的热活化延迟荧光材料。

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摘要

Thermally activated delayed fluorescence (TADF) materials emerged as promising light sources in third generation organic light-emitting diodes (OLED). Much effort has been invested for the development of small molecular TADF materials and vacuum process-based efficient TADF-OLEDs. In contrast, a limited number of solution processable high-molecular weight TADF materials toward low cost, large area, and scalable manufacturing of solution processed TADF-OLEDs have been reported so far. In this context, we report benzophenone-core carbazole dendrimers (GnB, n = generation) showing TADF and aggregation-induced emission enhancement (AIEE) properties along with alcohol resistance enabling further solution-based lamination of organic materials. The dendritic structure was found to play an important role for both TADF and AIEE activities in the neat films. By using these multifunctional dendritic emitters as non-doped emissive layers, OLED devices with fully solution processed organic multilayers were successfully fabricated and achieved maximum external quantum efficiency of 5.7%.
机译:在第三代有机发光二极管(OLED)中,热激活延迟荧光(TADF)材料作为有希望的光源出现了。为了开发小分子TADF材料和基于真空工艺的高效TADF-OLED,已经投入了很多精力。相反,迄今为止,已经报道了有限数量的可溶液加工的高分子量TADF材料,以低成本,大面积和可缩放的方式制备溶液加工的TADF-OLED。在这种情况下,我们报道了二苯甲酮核心的咔唑树枝状大分子(GnB,n =生成),显示出TADF和聚集诱导的发射增强(AIEE)特性以及耐醇性,从而使有机材料能够进一步进行基于溶液的层压。发现树突结构对于整齐薄膜中的TADF和AIEE活动都起着重要作用。通过将这些多功能树枝状发射体用作非掺杂发射层,成功制造了具有经过完全溶液处理的有机多层的OLED器件,并实现了5.7%的最大外部量子效率。

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