Coulombic control of charge transfer in radicals with quartet recycling luminescence

L Lujo Matasovic P Petri Murto S Shilong Yu W Wenzhao Wang (State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Qianjin Avenue 2699, Changchun 130012, P. R. China) J James D. Green (Department of Chemistry) G Giacomo Londi (Department of Chemistry and Industrial Chemistry) W Weixuan Zeng L Laura Brown W William K. Myers L Lars van Turnhout K Konstantina Armadorou A Avik Bhanja S Sergiu Petrusca D David Beljonne Y Yoann Olivier (Laboratory for Computational Modelling of Functional Materials, Namur Institute of Structured Matter, University of Namur, Rue de Bruxelles 61, 5000 Namur, Belgium) F Feng Li H Hugo Bronstein (Yusuf Hamied Department of Chemistry) T Timothy J. H. Hele (Department of Chemistry) R Richard H. Friend S Sebastian Gorgon (Cavendish Laboratory, University of Cambridge, JJ Thomson Ave, Cambridge CB3 0HE, United Kingdom)

Abstract

Abstract Excitons in organic materials are emerging as an attractive platform for tunable quantum technologies. Structures with near-degenerate doublet and triplet excitations in linked trityl radical, acene and carbazole units can host quartet states. These high spin states can be coherently manipulated, and later decay radiatively via the radical doublet transition. However, this requires controlling the deexcitation pathways of all metastable states. Here we establish design rules for efficient quartet generation and recycling to luminescence, using different connection arrangements of the molecular units. We discover that electronic coupling strength between these units dictates quartet formation and delayed emission yields, particularly through a Coulombically tuned acene-radical charge transfer state. This state acts as a source of non-radiative decay when acene-radical separation is small, but facilitates reversible doublet-quartet interconversion when acene-radical separation is large. Using these rules we report a material with 55% luminescence yield, where 94% of emitting excitons are recycled from the quartet with a 1.0 μ s lifetime. This reveals the central role of molecular topology in luminescent quantum materials.

Article Details

Volume / Issue Vol. 17, Issue 1
Published May 22, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (20)

L

Lujo Matasovic

P

Petri Murto

S

Shilong Yu

W

Wenzhao Wang

State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Qianjin Avenue 2699, Changchun 130012, P. R. China

J

James D. Green

Department of Chemistry

G

Giacomo Londi

Department of Chemistry and Industrial Chemistry

W

Weixuan Zeng

L

Laura Brown

W

William K. Myers

L

Lars van Turnhout

K

Konstantina Armadorou

A

Avik Bhanja

S

Sergiu Petrusca

D

David Beljonne

Y

Yoann Olivier

Laboratory for Computational Modelling of Functional Materials, Namur Institute of Structured Matter, University of Namur, Rue de Bruxelles 61, 5000 Namur, Belgium

F

Feng Li

H

Hugo Bronstein

Yusuf Hamied Department of Chemistry

T

Timothy J. H. Hele

Department of Chemistry

R

Richard H. Friend

S

Sebastian Gorgon

Cavendish Laboratory, University of Cambridge, JJ Thomson Ave, Cambridge CB3 0HE, United Kingdom