4.7 Article

Efficient red fluorescent OLEDs based on aggregation-induced emission combined with hybridized local and charge transfer state

期刊

DYES AND PIGMENTS
卷 184, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.dyepig.2020.108770

关键词

D-A-D type red fluorescent molecule; Aggregation-induced emission; Hybridized local and charge-transfer state; Red fluorescent organic light-emitting diodes; Exciton utilization

资金

  1. National Science Foundation of China [51873095, 51673105]
  2. Key Project of Higher Educational Science and Technology Program of Shandong Province of China [J18KZ001]
  3. Natural Science Foundation of Qingdao City of China [16-5-1-89-jch]
  4. State Key Laboratory of Supramolecular Structure and Materials of Jilin University [SKLSSM-202032]
  5. State Key Laboratory of Luminescent Materials and Devices of South China University of Technology

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By designing and synthesizing a D-A-D red fluorescent molecule PBTPA, combining aggregation-induced emission and hybridized local and charge transfer states, high solid-state luminescence efficiency and high exciton utilization efficiency were achieved. The external quantum efficiency and EUE values obtained in the experiment are relatively good, providing a reference for improving the efficiency of red OLEDs.
Limited by the energy gap law and large conjugate structures, red organic light-emitting diodes (OLEDs) have long been criticized for their efficiency problems. The aggregation-induced emission (AIE) effect and the reverse intersystem crossing process can lead to high photoluminescent quantum yields (PLQYs) and high exciton utilization efficiency (EUE), two key objectives for obtaining efficient OLEDs. In this work, we chose benzothiadiazole as the acceptor (A) and triphenylamine and phenothiazine as the donors (Ds) to design and synthesize a D-A-D red fluorescent molecule, PBTPA. Results of systematic photophysical measurements indicated PBTPA to exhibit AIE trending, manifesting as aggregation-induced enhanced emission and the characteristics of hybridized local and charge transfer (HLCT) states. These features facilitated high solid-state luminescence efficiency and high exciton utilization to be achieved. A non-doped device fabricated using PBTPA displayed a red electroluminescence peak at 656 nm, corresponding to the Commission International de L'Eclairage coordinates of (0.65, 0.32), and an external quantum efficiency of 1.62%. By calculation, the EUE reached a value of 50%. According to the results of theoretical calculations, the effective hot exciton channel between the second triplet (T-2) and the lowest singlet (S-1) was responsible for the high EUE. This EUE value is relatively good for this type of red OLEDs. Evidence indicates that combining AIE and HLCT has excellent potential to aid the discovery of newgeneration highly efficient red OLEDs.

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