Dielectric control of reverse intersystem crossing in thermally activated delayed fluorescence emitters

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作者
Alexander J. Gillett
Anton Pershin
Raj Pandya
Sascha Feldmann
Alexander J. Sneyd
Antonios M. Alvertis
Emrys W. Evans
Tudor H. Thomas
Lin-Song Cui
Bluebell H. Drummond
Gregory D. Scholes
Yoann Olivier
Akshay Rao
Richard H. Friend
David Beljonne
机构
[1] University of Cambridge,Cavendish Laboratory
[2] Université de Mons,Laboratory for Chemistry of Novel Materials
[3] Wigner Research Centre for Physics,Department of Chemistry
[4] Swansea University,CAS Key Laboratory of Soft Matter Chemistry, Department of Polymer Science and Engineering
[5] University of Science and Technology of China,Department of Chemistry
[6] Princeton University,Unité de Chimie Physique Théorique et Structurale & Laboratoire de Physique du Solide, Namur Institute of Structured Matter
[7] Université de Namur,undefined
来源
Nature Materials | 2022年 / 21卷
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摘要
Thermally activated delayed fluorescence enables organic semiconductors with charge transfer-type excitons to convert dark triplet states into bright singlets via reverse intersystem crossing. However, thus far, the contribution from the dielectric environment has received insufficient attention. Here we study the role of the dielectric environment in a range of thermally activated delayed fluorescence materials with varying changes in dipole moment upon optical excitation. In dipolar emitters, we observe how environmental reorganization after excitation triggers the full charge transfer exciton formation, minimizing the singlet–triplet energy gap, with the emergence of two (reactant-inactive) modes acting as a vibrational fingerprint of the charge transfer product. In contrast, the dielectric environment plays a smaller role in less dipolar materials. The analysis of energy–time trajectories and their free-energy functions reveals that the dielectric environment substantially reduces the activation energy for reverse intersystem crossing in dipolar thermally activated delayed fluorescence emitters, increasing the reverse intersystem crossing rate by three orders of magnitude versus the isolated molecule.
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页码:1150 / 1157
页数:7
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