Login / Signup

Adjusting the Electron-Withdrawing Ability of Acceptors in Thermally Activated Delayed Fluorescence Conjugated Polymers for High-Performance OLEDs.

Yumeng GuoZhennan ZhaoLei HuaYuchao LiuBowei XuYuzhuo ZhangShouke YanZhongjie Ren
Published in: ACS applied materials & interfaces (2023)
Constructing high-performance solution-processed organic light-emitting diodes (OLEDs) based on thermally activated delayed fluorescence (TADF) conjugated polymers remains a challenging issue. The electron-withdrawing ability of acceptors in TADF units significantly affects the TADF properties of the conjugated polymers. Herein, we have designed three TADF conjugated polymers, in which phenoxazine donors and anthracen-9(10H)-one acceptors are incorporated into the polymeric backbones and side chains, respectively, and the carbazole derivative is copolymerized as the host. By incorporating different heteroatoms, such as nitrogen, oxygen, or sulfur, with slightly different electronegativities into anthracen-9(10H)-one, the effect of the electron-withdrawing ability of the acceptor on the performance of conjugated TADF polymer-based OLEDs is thus systematically studied. It is found that the introduction of a nitrogen atom can enhance the spin-orbital coupling and RISC process due to the modulated energy levels and nature of the excited states. As a result, the solution-processed OLEDs based on the prepared polymer p-PXZ-XN display an excellent comprehensive performance with an EQE max of 17.6%, a low turn-on voltage of 2.8 V, and a maximum brightness of 14750 cd m -2 . Notably, the efficiency roll-off is quite low, maintaining 15.1% at 1000 cd m -2 , 12.1% at 3000 cd m -2 , and 6.1% at 10000 cd m -2 , which ranks in the first tier among the reported TADF conjugated polymers. This work provides a guideline for constructing high-efficiency TADF polymers.
Keyphrases
  • solar cells
  • photodynamic therapy
  • high efficiency
  • electron transfer
  • energy transfer
  • nk cells
  • drug delivery
  • room temperature
  • solid state
  • ionic liquid
  • transition metal