Issue 36, 2024

An integrated screening approach for designing efficient thermally activated delayed fluorescent materials for OLEDs

Abstract

Thermally activated delayed fluorescence (TADF) materials, as the third generation of organic light-emitting diode (OLED) materials, still lag behind heavy-metal phosphorescent OLEDs in terms of luminescence stability and efficiency, and have not yet been successfully commercialized. Experimental determination is often time-consuming. To screen out efficient and stable TADF molecules, this paper for the first time develops a method for screening organic materials by combining luminescence stability and efficiency. By collecting previous experimental data, we established a candidate dataset of 2533 TADF molecules and an experimental dataset of thermal decomposition temperatures (Td, equivalent to 5% weight loss) for 365 TADF molecules. Using a machine learning model, we screened 1779 molecules with Td values greater than 400 °C. From these, 90 molecules were selected for detailed analysis, ultimately identifying 16 candidate molecules with excellent performance. The study also found that molecules with a dihedral angle between the donor and acceptor ranging from 35° to 80° exhibited the best performance. This analysis may provide an effective predictive method. A stepwise screening model with strong theoretical support could be an effective approach for designing TADF molecules.

Graphical abstract: An integrated screening approach for designing efficient thermally activated delayed fluorescent materials for OLEDs

Supplementary files

Article information

Article type
Paper
Submitted
06 Jun 2024
Accepted
02 Aug 2024
First published
16 Aug 2024

J. Mater. Chem. C, 2024,12, 14515-14522

An integrated screening approach for designing efficient thermally activated delayed fluorescent materials for OLEDs

H. Guo, G. Jiang, B. Diao, J. Du, W. Sun, J. Fan and X. Peng, J. Mater. Chem. C, 2024, 12, 14515 DOI: 10.1039/D4TC02333A

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