Abstract
Current multi-resonance thermally activated delayed fluorescence (MR-TADF) frameworks are largely limited to B/N- or carbonyl/N-based systems, which rarely achieve deep-blue emission approaching the Rec.2020 standard. Herein, we propose a dual nitrogen-atom doping strategy to construct a novel MR-TADF scaffold. By embedding electron-deficient nitrogen (sp2) atoms into indolo[3,2,1-jk]carbazole (ICz) in a meta-position fashion, a new multiple resonance framework (NICz) is obtained. Combined with peripheral substituent engineering, five derivatives are developed. The N-doping narrows the singlet–triplet splitting (ΔEST) from 0.49 eV (ICz) to 0.38 eV (NICz), and the derived emitters show further reduced ΔEST values of 0.17–0.28 eV. Meanwhile, the four compounds exhibit narrowband MR-TADF emission with wavelength of 426–440 nm and FWHM of 32–45 nm while the tCz-NICz shows donor-acceptor featured blue TADF emission (λem = 466 nm, FWHM = 45 nm). In OLEDs, PhCz-NICz achieves a deep-blue emission at 436 nm with CIE (0.154, 0.050) and an EQE of 11.1%, whereas tCz-NICz reaches an EQE of 20.9% at 464 nm. This work demonstrates a promising only N-based MR-TADF platform for efficient deep-blue luminescence.
| Original language | English |
|---|---|
| Article number | 177650 |
| Journal | Chemical Engineering Journal |
| Volume | 541 |
| DOIs | |
| State | Published - 1 Aug 2026 |
Keywords
- Indolo[3,2,1-jk]carbazole
- MR-TADF
- N-doping
- OLED
- Substituents engineering
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