Issue 18, 2021

Acridin-9(10H)-one based thermally activated delayed fluorescence material: simultaneous optimization of RISC and radiation processes to boost luminescence efficiency

Abstract

It is strongly desired for thermally activated delayed fluorescence (TADF) compounds to possess a high rate constant of radiation (KR) and a high rate constant of reverse intersystem crossing (KRISC) simultaneously. A novel TADF compound, 3,6-di(10H-phenoxazin-10-yl)-10-phenylacridin-9(10H)-one (3,6-DPXZ-AD), is designed by attaching phenoxazine as the electron donor at the 3,6-sites of acridin-9(10H)-one as the acceptor. The unique sp2-hybridization of the nitrogen atom of the acridone ring leads to the quasi-equatorial conformation and the high molecular rigidity of 3,6-DPXZ-AD, which suppress conformation relaxation and finally generate a high KR of 1.4 × 107 s−1. The phosphorescence of 3,6-DPXZ-AD with unexpected higher energy than its fluorescence is proved to originate from the intermolecular through-space charge transfer state (TSCT) and the locally excited triplet states (3LE). Due to the multichannel RISC process from the TSCT and 3LE states to the 1CT state, a high KRISC of 1.1 × 106 s−1 is realized simultaneously. 3,6-DPXZ-AD shows a short TADF lifetime of 1.6 μs and a high fluorescence quantum yield of 94.9%. The yellow organic light-emitting diode with 3,6-DPXZ-AD as the doped emitter exhibits excellent performance with a low turn-on voltage of 2.2 V, an external quantum efficiency of 30.6% and a power efficiency of 109.9 lm W−1, being among the best values ever reported for acridone based materials.

Graphical abstract: Acridin-9(10H)-one based thermally activated delayed fluorescence material: simultaneous optimization of RISC and radiation processes to boost luminescence efficiency

Supplementary files

Article information

Article type
Paper
Submitted
06 Feb 2021
Accepted
23 Mar 2021
First published
23 Mar 2021

J. Mater. Chem. C, 2021,9, 5885-5892

Acridin-9(10H)-one based thermally activated delayed fluorescence material: simultaneous optimization of RISC and radiation processes to boost luminescence efficiency

Y. Mei, D. Liu, J. Li, H. Li and W. Wei, J. Mater. Chem. C, 2021, 9, 5885 DOI: 10.1039/D1TC00592H

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