Sub‐Second Long Lifetime Triplet Exciton Reservoir for Highly Efficient and Stable Organic Light‐Emitting Diode

Author:

Tang Zhenyu1ORCID,Lyu Fang12ORCID,Gu Jiannan1,Guo Haoqing1,Yu Wenjin1ORCID,Zou Yu1ORCID,Gong Lefan1,Tang Rong1,Qu Bo1,Guo Xuan1,Chen Yan1,Deng Yongkai1,Bian Mengying1,Li Yan13,Zhang Dongdong4,Wei Mingyang5,Park So Min5,Xia Pan5,Lv Yao6,Gong Qihuang13,Wang Shufeng13ORCID,Chen Zhijian1,Xiao Lixin13ORCID

Affiliation:

1. State Key Laboratory of Artificial Microstructure and Mesoscopic Physics School of Physics Peking University Beijing 100871 P. R. China

2. Department of Physics The University of Tokyo Tokyo 113‐0033 Japan

3. Yangtze Delta Institute of Optoelectronics Peking University Nantong 226010 P. R. China

4. Key Lab of Organic Optoelectronics and Molecular Engineering of Ministry of Education Department of Chemistry Tsinghua University Beijing 100084 P. R. China

5. Department of Electrical and Computer Engineering University of Toronto Toronto M5S 3G4 Canada

6. Beijing Green Guardee Technology Co. Ltd. Beijing 102299 P. R. China

Abstract

AbstractIn organic light‐emitting diode (OLED), achieving high efficiency requires effective triplet exciton confinement by carrier‐transporting materials, which typically have higher triplet energy (ET) than the emitter, leading to poor stability. Here, an electron‐transporting material (ETM), whose ET is 0.32 eV lower than that of the emitter is reported. In devices, it surprisingly exhibits strong confinement effect and generates excellent efficiency. Additionally, the device operational lifetime is 4.9 times longer than the device with a standard ETM, 1,3,5‐tri(1‐phenyl‐1H‐benzo[d]imidazol‐2‐yl) phenyl (whose ET 0.36 eV is higher than the emitter). This anomalous finding is ascribed to the exceptionally long triplet state lifetime (≈0.2 s) of the ETM. It is named as long‐lifetime triplet exciton reservoir effect. The systematic analysis reveals that the long triplet lifetime of ETM can compensate the requirement for high ET with the help of endothermic energy transfer. Such combination of low ET and long lifetime provides equivalent exciton confinement effect and high molecular stability simultaneously. It offers a novel molecular design paradigm for breaking the dilemma between high efficiency and prolonged operational lifetime in OLEDs.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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