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Hydrogen bond-modulated molecular packing and its applications in high-performance non-doped organic electroluminescence

Authors :
Shiyun Xiong
Dianming Sun
Xue-Mei Ou
Ming Zhang
Yi-Zhong Shi
Jiansheng Jie
Jia-Xiong Chen
Chihaya Adachi
Xiaohong Zhang
Kai Wang
Wei Liu
Chun-Sing Lee
Xiao-Chun Fan
Jia Yu
Takeshi Komino
Cai-Jun Zheng
Youichi Tsuchiya
Gaole Dai
Source :
Materials Horizons. 7:2734-2740
Publication Year :
2020
Publisher :
Royal Society of Chemistry (RSC), 2020.

Abstract

Exploiting high-performance non-doped organic light-emitting diodes (OLEDs) is a step towards future commercial application requirements, but great challenges remain due to quenching related to intermolecular triplet interaction. In this work, a novel strategy of exploiting high-performance non-doped electroluminescence via tuning intermolecular hydrogen bonding is demonstrated. Suitable intermolecular hydrogen bonding enables formation of a 3D supramolecular framework, which not only evidently restricts the nonradiative process and suppresses the triplet exciton quenching caused by π–π stacking of triplets, but also favors the horizontal molecular orientations especially in their non-doped states. The non-doped OLED based on the thermally activated delayed fluorescence emitter mTPy-PXZ with such suitable intermolecular hydrogen bonds exhibits the state-of-the-art performance with maximum external quantum efficiency of up to 23.6% with only 7.2% roll-off at 1000 cd m−2. Moreover, it is the first report that the performance of an OLED with a non-doped emitting layer can surpass its corresponding optimized doped device. It is believed that this hydrogen bond-modulated mechanism can not only provide a new pathway for designing emitters for high-performance non-doped organic electroluminescence, but also has great potential in other solid-state luminescence applications.

Details

ISSN :
20516355 and 20516347
Volume :
7
Database :
OpenAIRE
Journal :
Materials Horizons
Accession number :
edsair.doi...........44361437fd85df3d93964964a66b139d
Full Text :
https://doi.org/10.1039/d0mh00952k