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Updated: Jan 8, 2026

Step-by-Step Guide for Harnessing Organic Light Emitting Diodes by Solution Processed Device Fabrication of a TADF Emitter
Published on: November 7, 2025
Modulating excited state via diversified electron-donating units in MR-TADF emitters: a theoretical exploration of
Zhu Chang1, Rajat Walia1, Dandan Zhang2
1Institute of Functional Nano and Soft Materials (FUNSOM), Soochow University, Suzhou, Jiangsu, 215123, P. R. China. jqli0926@suda.edu.cn.
Abstract:
Multi-resonant thermally activated delayed fluorescence (MR-TADF) molecules have emerged as promising candidates for high-resolution organic light-emitting diode (OLED) displays. However, their performance is often limited by intrinsically large singlet-triplet energy gaps (ΔEST), leading to an unsatisfactory reverse intersystem crossing rate (kRISC). Herein, we systematically investigate how to modulate excited-state characteristics by strategically integrating diversified electron-donating units with an MR skeleton, enabling rational control over short-range charge transfer (SRCT) and long-range charge transfer (LRCT) components. The excited-state characters of S1, including SRCT, SRCT + LRCT, and LRCT, are achieved by fine-tuning the donor and MR interactions. Compared with unsubstituted analogues, the increase of the LRCT component significantly reduces ΔEST, thereby elevating kRISC values. However, the LRCT-dominated S1 states show broad and structureless emission spectra due to substantial relaxation energy. For molecules with mixed SRCT and LRCT characters, triplet up-conversion occurs efficiently owing to the small ΔEST mediated by the mixed characters. Furthermore, the SRCT character with relatively small relaxation energy relevant to the S1 → S0 process could help achieve narrowband emission. This work establishes a molecular design framework for high-efficiency and narrowband MR-TADF materials, highlighting the critical role of donor unit engineering in exciton utilization and color purity.
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