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Updated: Jan 16, 2026

Scale-up Chemical Synthesis of Thermally-activated Delayed Fluorescence Emitters Based on the Dibenzothiophene-S,S-Dioxide Core
Published on: October 24, 2017
Highly efficient full-color thermally activated delayed fluorescence materials based on quinolino-acridine:
Jun-Ling Jin1, Xiang Ding1, Ji-Feng Yang1
1Hunan Provincial Key Laboratory of Water Treatment Functional Materials, Hunan Province Engineering Research Center of Electroplating Wastewater Reuse Technology, College of Chemistry and Materials Engineering, Hunan University of Arts and Science, Changde, Hunan, 415000, China. clark_yang@yeah.net.
Abstract:
In this study, six donor-acceptor (D-A)-type TADF molecules featuring a quinolino-acridine donor moiety were systematically investigated to obtain highly efficient full-color TADF materials and reveal the effect of the A fragment on the radiative and RISC processes. The results suggest that precise modulation of D-A interactions enables control of the excited-state characteristics, yielding small energy gaps between S1 and T1 (ΔEST = 0.035-0.074 eV) through optimal spatial separation of the HOMO and LUMO orbitals. All molecules exhibit strong charge transfer (CT) character in S1 states and either CT-dominant or hybrid CT/local excitation (LE) character in T1 states, which results in strong spin-orbital coupling, further resulting in exceptional RISC rates (106-107 s-1). The radiative decay rates (kr) of these molecules remain sufficiently large for efficient fluorescence, while nonradiative pathways are primarily governed by S1/S0 structural relaxation and vibronic coupling between electronic and vibrational transitions. Notably, our molecular design strategy successfully achieves full-color emission tuning through the rational selection of A units, demonstrating the versatility of quinolino-acridine-based systems. We hope these findings establish a robust theoretical framework for developing quinolino-acridine-based TADF materials with optimized performance for OLED applications.
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