Jung Sung Hoon, Park Su Hong, Kwon Na Yeon, Park Jin Young, Kang Min Ji, Koh Chang Woo, Cho Min Ju, Park Sungnam, Choi Dong Hoon
Department of Chemistry, Research Institute for Natural Sciences, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul 02841, Republic of Korea.
ACS Appl Mater Interfaces. 2023 Dec 6;15(48):56106-56115. doi: 10.1021/acsami.3c11702. Epub 2023 Nov 23.
In solution-processed organic light-emitting diodes (OLEDs), achieving high color purity and efficiency is as important as that in vacuum processes. Emitters suitable for solution processing must have excellent solubility in organic solvents, high molecular weight, and compatibility with the host materials. In this study, we synthesized a deep-blue emitter that satisfies the above conditions by introducing a 1,4-bis(indolo[3,2,1-]carbazol-2-yl)benzene-based planar emitting core (DICz) structure and four 3,6-di--butyl-9-phenyl-9-carbazole (Cz) peripheral units, namely, 4Cz-DICz. A comparative compound, 4Hex-DICz, incorporating hexyl phenyl groups was synthesized. In contrast to 4Hex-DICz, 4Cz-DICz exhibited exceptional solubility in organic solvents and superior film-forming properties attributed to the presence of Cz units. Additionally, in the film state, the effective encapsulation of the emitting core (DICz) by the Cz units in 4Cz-DICz helps prevent undesirable molecular aggregation. The solution-processed OLEDs employing the CH-2D1 film, doped with 5 wt % 4Cz-DICz as the emitting layer, exhibited a deep-blue emission at 424 nm, characterized by a narrow bandwidth of 22 nm, and achieved a maximum external quantum efficiency (EQE) of approximately 4.0%. In contrast, the 4Hex-DICz-based device demonstrated an EQE of 2.91%. Consequently, we have successfully demonstrated that the introduction of four bulky Cz units into the DICz core is a promising molecular design strategy for the development of soluble indolocarbazole-based emitters, especially those used in high-performance deep-blue fluorescent OLEDs.
在溶液处理的有机发光二极管(OLED)中,实现高色纯度和效率与真空处理中的情况同样重要。适用于溶液处理的发光体必须在有机溶剂中具有优异的溶解性、高分子量以及与主体材料的相容性。在本研究中,我们通过引入基于1,4-双(吲哚并[3,2,1-]咔唑-2-基)苯的平面发光核(DICz)结构和四个3,6-二-丁基-9-苯基-9-咔唑(Cz)外围单元,即4Cz-DICz,合成了一种满足上述条件的深蓝色发光体。合成了一种包含己基苯基的对比化合物4Hex-DICz。与4Hex-DICz相比,4Cz-DICz在有机溶剂中表现出优异的溶解性和归因于Cz单元存在的卓越成膜性能。此外,在薄膜状态下,4Cz-DICz中Cz单元对发光核(DICz)的有效封装有助于防止不期望的分子聚集。采用掺杂5 wt% 4Cz-DICz作为发光层的CH-2D1薄膜的溶液处理OLED在424 nm处呈现深蓝色发射,其特征在于带宽窄至22 nm,并实现了约4.0%的最大外量子效率(EQE)。相比之下,基于4Hex-DICz的器件的EQE为2.91%。因此,我们成功证明了在DICz核中引入四个庞大的Cz单元是开发可溶性吲哚并咔唑基发光体,特别是用于高性能深蓝色荧光OLED的发光体的一种有前景的分子设计策略。