English

Open-shell TADF: Quartet-derived luminescence with dark radicals

Materials Science 2025-06-10 v1 Chemical Physics Optics

Abstract

High-spin states in organic molecules offer promising tuneability for quantum technologies. Photogenerated quartet excitons are an extensively studied platform, but their applications are limited by the absence of optical read-out via luminescence. Here we demonstrate a new class of synthetically accessible molecules with quartet-derived luminescence, formed by appending a non-luminescent TEMPO radical to Thermally Activated Delayed Fluorescence (TADF) chromophores previously used in OLEDs. The low singlet-triplet energy gap of the chromophore opens a luminescence channel from radical-triplet coupled states. We establish a set of design rules by tuning the energetics in a series of compounds based on a naphthalimide (NAI) core. We observe generation of quartet states and measure the strength of radical-triplet exchange (0.7 GHz). In DMAC-TEMPO, up to 72% of detected photons emerge after reverse intersystem crossing from the quartet state repopulates the state with singlet character. This design strategy does not rely on a luminescent radical to provide an emission pathway from the high-spin state. The large library of TADF chromophores promises a greater pallet of achievable emission colours.

Keywords

Cite

@article{arxiv.2411.18112,
  title  = {Open-shell TADF: Quartet-derived luminescence with dark radicals},
  author = {Sebastian Gorgon and Petri Murto and Daniel G. Congrave and Lujo Matasovic and Andrew D. Bond and William K. Myers and Hugo Bronstein and Richard H. Friend},
  journal= {arXiv preprint arXiv:2411.18112},
  year   = {2025}
}

Comments

14 pages, 4 figures

R2 v1 2026-06-28T20:14:11.267Z