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Reduced Intrinsic Non‐Radiative Losses Allow Room‐Temperature Triplet Emission from Purely Organic Emitters

Authors :
Lihui Jiang
Sebastian Reineke
Felix Fries
Karl Leo
Olaf Zeika
Yingping Zou
Shun-Qi Xu
Wenlan Liu
Tian-Yi Li
Denis Andrienko
Yungui Li
Reinhard Scholz
Xinliang Feng
Charusheela Ramanan
Simone Lenk
Source :
Advanced Materials
Publication Year :
2021
Publisher :
Wiley, 2021.

Abstract

Persistent luminescence from triplet excitons in organic molecules is rare, as fast non-radiative deactivation typically dominates over radiative transitions. This work demonstrates that the substitution of a hydrogen atom in a derivative of phenanthroimidazole with an N-phenyl ring can substantially stabilize the excited state. This stabilization converts an organic material without phosphorescence emission into a molecular system exhibiting efficient and ultralong afterglow phosphorescence at room temperature. Results from systematic photophysical investigations, kinetic modeling, excited-state dynamic modeling, and single-crystal structure analysis identify that the long-lived triplets originate from a reduction of intrinsic non-radiative molecular relaxations. Further modification of the N-phenyl ring with halogen atoms affects the afterglow lifetime and quantum yield. As a proof-of-concept, an anticounterfeiting device is demonstrated with a time-dependent Morse code feature for data encryption based on these emitters. A fundamental design principle is outlined to achieve long-lived and emissive triplet states by suppressing intrinsic non-radiative relaxations in the form of molecular vibrations or rotations.

Details

ISSN :
15214095 and 09359648
Volume :
33
Database :
OpenAIRE
Journal :
Advanced Materials
Accession number :
edsair.doi.dedup.....2c94145f5efaf78dde21c3b3f55e2fbe
Full Text :
https://doi.org/10.1002/adma.202101844