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Spontaneous exciton dissociation enables spin state interconversion in delayed fluorescence organic semiconductors

Authors :
Bluebell H. Drummond
Weimin Chen
Claire Tonnelé
David Casanova
Neil C. Greenham
Richard H. Friend
David Beljonne
Yuttapoom Puttisong
Patrick J. Conaghan
Lin-Song Cui
Yoann Olivier
Gaetano Ricci
Emrys W. Evans
Frédéric Castet
Manon Catherin
Alexander J. Gillett
Giacomo Londi
Frédéric Fages
Elena Zaborova
Darcy M. L. Unson
Gillett, Alexander J [0000-0001-7572-7333]
Tonnelé, Claire [0000-0003-0791-8239]
Londi, Giacomo [0000-0001-7777-9161]
Casanova, David [0000-0002-8893-7089]
Castet, Frédéric [0000-0002-6622-2402]
Chen, Weimin M [0000-0002-6405-9509]
Evans, Emrys W [0000-0002-9092-3938]
Drummond, Bluebell H [0000-0001-5940-8631]
Greenham, Neil C [0000-0002-2155-2432]
Puttisong, Yuttapoom [0000-0002-9690-6231]
Fages, Frédéric [0000-0003-2013-0710]
Beljonne, David [0000-0001-5082-9990]
Friend, Richard H [0000-0001-6565-6308]
Apollo - University of Cambridge Repository
Centre Interdisciplinaire de Nanoscience de Marseille (CINaM)
Centre National de la Recherche Scientifique (CNRS)-Aix Marseille Université (AMU)
Institut des Sciences Moléculaires (ISM)
Université Montesquieu - Bordeaux 4-Université Sciences et Technologies - Bordeaux 1-École Nationale Supérieure de Chimie et de Physique de Bordeaux (ENSCPB)-Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)
Aix Marseille Université (AMU)-Centre National de la Recherche Scientifique (CNRS)
Université Montesquieu - Bordeaux 4-Université Sciences et Technologies - Bordeaux 1 (UB)-École Nationale Supérieure de Chimie et de Physique de Bordeaux (ENSCPB)-Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)
Apollo-University Of Cambridge Repository
Gillett, Alexander J. [0000-0001-7572-7333]
Chen, Weimin M. [0000-0002-6405-9509]
Evans, Emrys W. [0000-0002-9092-3938]
Drummond, Bluebell H. [0000-0001-5940-8631]
Greenham, Neil C. [0000-0002-2155-2432]
Friend, Richard H. [0000-0001-6565-6308]
Source :
Nature Communications, Vol 12, Iss 1, Pp 1-10 (2021), Nature Communications, Nature Communications, Nature Publishing Group, 2021, 12, ⟨10.1038/s41467-021-26689-8⟩, Nature Communications, 2021, 12, ⟨10.1038/s41467-021-26689-8⟩
Publication Year :
2021
Publisher :
Springer Science and Business Media LLC, 2021.

Abstract

Engineering a low singlet-triplet energy gap (ΔEST) is necessary for efficient reverse intersystem crossing (rISC) in delayed fluorescence (DF) organic semiconductors but results in a small radiative rate that limits performance in LEDs. Here, we study a model DF material, BF2, that exhibits a strong optical absorption (absorption coefficient = 3.8 × 105 cm−1) and a relatively large ΔEST of 0.2 eV. In isolated BF2 molecules, intramolecular rISC is slow (delayed lifetime = 260 μs), but in aggregated films, BF2 generates intermolecular charge transfer (inter-CT) states on picosecond timescales. In contrast to the microsecond intramolecular rISC that is promoted by spin-orbit interactions in most isolated DF molecules, photoluminescence-detected magnetic resonance shows that these inter-CT states undergo rISC mediated by hyperfine interactions on a ~24 ns timescale and have an average electron-hole separation of ≥1.5 nm. Transfer back to the emissive singlet exciton then enables efficient DF and LED operation. Thus, access to these inter-CT states, which is possible even at low BF2 doping concentrations of 4 wt%, resolves the conflicting requirements of fast radiative emission and low ΔEST in organic DF emitters.<br />A low singlet-triplet energy gap, necessary for delayed fluorescence organic semiconductors, results in a small radiative rate that limits performance in OLEDs. Here, the authors show that it is possible to reconcile these conflicting requirements in materials that can access both high oscillator strength intramolecular excitations and intermolecular charge transfer states.

Details

ISSN :
20411723
Database :
OpenAIRE
Journal :
Nature Communications, Vol 12, Iss 1, Pp 1-10 (2021), Nature Communications, Nature Communications, Nature Publishing Group, 2021, 12, ⟨10.1038/s41467-021-26689-8⟩, Nature Communications, 2021, 12, ⟨10.1038/s41467-021-26689-8⟩
Accession number :
edsair.doi.dedup.....a54c8259f3861a5fb38fb0a9e0bb040e