Intramolecular Locking and Coumarin Insertion: A Stepwise Approach for TADF Design
Simon Paredis
1, 2, 3
,
Tom Cardeynaels
1, 2, 3, 4
,
Sonny Brebels
1, 2, 3
,
Jasper Deckers
1, 2, 3
,
S. Kuila
5
,
A. Lathouwers
1, 2, 3
,
Melissa Van landeghem
2, 3, 6
,
Koen Vandewal
2, 3, 6
,
Andrew Danos
5
,
A. P. Monkman
5
,
B. J. Champagne
4
,
Wouter Maes
1, 2, 3
3
Energyville, Thorpark, Genk 3600, Belgium
|
Publication type: Journal Article
Publication date: 2023-10-18
scimago Q2
wos Q2
SJR: 0.698
CiteScore: 5.3
Impact factor: 2.9
ISSN: 14639076, 14639084
PubMed ID:
37888766
Physical and Theoretical Chemistry
General Physics and Astronomy
Abstract
Three novel TADF (thermally activated delayed fluorescence) emitters based on the well-studied Qx-Ph-DMAC fluorophore are designed and synthesized. The photophysical properties of these materials are studied from a theoretical and experimental point of view, demonstrating the cumulative effects of multiple small modifications that combine to afford significantly improved TADF performance. First, an extra phenyl ring is added to the acceptor part of Qx-Ph-DMAC to increase the conjugation length, resulting in BQx-Ph-DMAC, which acts as an intermediate molecular structure. Next, an electron-deficient coumarin unit is incorporated to fortify the electron accepting ability, affording ChromPy-Ph-DMAC with red-shifted emission. Finally, the conjugated system is further enlarged by ‘locking’ the molecular structure, generating DBChromQx-DMAC with further red-shifted emission. The addition of the coumarin unit significantly impacts the charge-transfer excited state energy levels with little effect on the locally excited states, resulting in a decrease of the singlet–triplet energy gap. As a result, the two coumarin-based emitters show considerably improved TADF performance in 1 w/w% zeonex films when compared to the initial Qx-Ph-DMAC structure. ‘Locking’ the molecular structure further lowers the singlet–triplet energy gap, resulting in more efficient reverse intersystem crossing and increasing the contribution of TADF to the total emission.
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Paredis S. et al. Intramolecular Locking and Coumarin Insertion: A Stepwise Approach for TADF Design // Physical Chemistry Chemical Physics. 2023. Vol. 25. No. 43. pp. 29842-29849.
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Paredis S., Cardeynaels T., Brebels S., Deckers J., Kuila S., Lathouwers A., Van landeghem M., Vandewal K., Danos A., Monkman A. P., Champagne B. J., Maes W. Intramolecular Locking and Coumarin Insertion: A Stepwise Approach for TADF Design // Physical Chemistry Chemical Physics. 2023. Vol. 25. No. 43. pp. 29842-29849.
Cite this
RIS
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TY - JOUR
DO - 10.1039/d3cp03695b
UR - https://xlink.rsc.org/?DOI=D3CP03695B
TI - Intramolecular Locking and Coumarin Insertion: A Stepwise Approach for TADF Design
T2 - Physical Chemistry Chemical Physics
AU - Paredis, Simon
AU - Cardeynaels, Tom
AU - Brebels, Sonny
AU - Deckers, Jasper
AU - Kuila, S.
AU - Lathouwers, A.
AU - Van landeghem, Melissa
AU - Vandewal, Koen
AU - Danos, Andrew
AU - Monkman, A. P.
AU - Champagne, B. J.
AU - Maes, Wouter
PY - 2023
DA - 2023/10/18
PB - Royal Society of Chemistry (RSC)
SP - 29842-29849
IS - 43
VL - 25
PMID - 37888766
SN - 1463-9076
SN - 1463-9084
ER -
Cite this
BibTex (up to 50 authors)
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@article{2023_Paredis,
author = {Simon Paredis and Tom Cardeynaels and Sonny Brebels and Jasper Deckers and S. Kuila and A. Lathouwers and Melissa Van landeghem and Koen Vandewal and Andrew Danos and A. P. Monkman and B. J. Champagne and Wouter Maes},
title = {Intramolecular Locking and Coumarin Insertion: A Stepwise Approach for TADF Design},
journal = {Physical Chemistry Chemical Physics},
year = {2023},
volume = {25},
publisher = {Royal Society of Chemistry (RSC)},
month = {oct},
url = {https://xlink.rsc.org/?DOI=D3CP03695B},
number = {43},
pages = {29842--29849},
doi = {10.1039/d3cp03695b}
}
Cite this
MLA
Copy
Paredis, Simon, et al. “Intramolecular Locking and Coumarin Insertion: A Stepwise Approach for TADF Design.” Physical Chemistry Chemical Physics, vol. 25, no. 43, Oct. 2023, pp. 29842-29849. https://xlink.rsc.org/?DOI=D3CP03695B.