Wang Wenhui, Bian Jinkun, Chen Kaijin, Li Chuying, Long Yubo, Huang Haitao, Jiang Long, Zhao Juan, Liu Siwei, Chi Zhenguo, Xu Jiarui, Zhang Yi
PCFM Lab, Guangdong Engineering Technology Research Centre for High-performance Organic and Polymer Photoelectric Functional Films, GBRCE for Functional Molecular Engineering, GD HPPC Lab, State Key Laboratory of Optoelectronic Materials and Technologies, School of Chemistry, IGCME, Sun Yat-sen University, Guangzhou, 510275, P. R. China.
Instrumental Analysis & Research Center, Sun Yat-sen University, Guangzhou, 510275, P. R. China.
Angew Chem Int Ed Engl. 2024 Jul 1;63(27):e202318782. doi: 10.1002/anie.202318782. Epub 2024 May 27.
High performance solution-processable deep-blue emitters with a Commission International de l'Eclairage (CIE) coordinate of CIE≤0.08 are highly desired in ultrahigh-definition display. Although, deep-blue materials with hybridized local and charge-transfer (HLCT) excited-state feature are promising candidates, their rigidity and planar molecular structures limit their application in solution-processing technique. Herein, four novel deep-blue solution-processable HLCT emitters were first proposed by attaching rigid imide aliphatic rings as functional units onto the HLCT emitting core. The functional units not only improve solubility, enhance thermal properties and morphological stability of the emitting core, but also promote photoluminescence efficiency, balance charge carrier transport, and inhibit aggregation-caused quenching effect due to the weak electron-withdrawing property as well as steric hindrance. The corresponding solution-processable organic light-emitting diodes (OLEDs) substantiate an unprecedented maximum external quantum efficiency (EQE) of 11.5 % with an emission peak at 456 nm and excellent colour purity (full width at half maximum=56 nm and CIE=0.09). These efficiencies represent the state-of-the-art device performance among the solution-processable blue OLEDs based on the "hot exciton" mechanism. This simple strategy opens up a new avenue for designing highly efficient solution-processable deep-blue organic luminescent materials.
在超高清显示中,迫切需要具有国际照明委员会(CIE)坐标CIE≤0.08的高性能溶液可加工深蓝色发光体。尽管具有局域和电荷转移(HLCT)激发态特征的深蓝色材料是很有前景的候选材料,但其刚性和平面分子结构限制了它们在溶液加工技术中的应用。在此,首次通过将刚性酰亚胺脂肪族环作为功能单元连接到HLCT发光核上,提出了四种新型的溶液可加工深蓝色HLCT发光体。这些功能单元不仅提高了溶解性,增强了发光核的热性能和形态稳定性,还由于其较弱的吸电子性能和空间位阻,提高了光致发光效率,平衡了电荷载流子传输,并抑制了聚集诱导猝灭效应。相应的溶液可加工有机发光二极管(OLED)实现了前所未有的11.5%的最大外量子效率(EQE),发射峰在456nm,色纯度优异(半高宽=56nm,CIE=0.09)。这些效率代表了基于“热激子”机制的溶液可加工蓝色OLED中的最先进器件性能。这种简单的策略为设计高效的溶液可加工深蓝色有机发光材料开辟了一条新途径。