Issue 36, 2019, Issue in Progress

QM/MM studies on luminescence mechanism of dinuclear copper iodide complexes with thermally activated delayed fluorescence

Abstract

The QM/MM method is employed to investigate the photophysical mechanism of two dinuclear copper iodide complexes with thermally activated delayed fluorescence (TADF). The S1–T1 energy differences (ΔEST) in these two complexes are small enough so that repopulating the S1 state from T1 becomes energetically allowed. Both forward and reverse intersystem crossing (ISC and rISC) processes are much faster than the corresponding radiative fluorescence and phosphorescence processes [kISC (108 s−1) > kFr (106 s−1), krISC (105 s−1) > kPr (103 s−1)]. The faster rISC process than the phosphorescence emission enables TADF. Moreover, the diphosphine ligands are found to play an important role in regulating the electronic structures and thereto the radiative and nonradiative rate constants. The present work rationalizes experimental phenomena and helps understand the intrinsic luminescence properties. The obtained insights could be useful for tuning the luminescence performance of dicopper-based luminescence materials.

Graphical abstract: QM/MM studies on luminescence mechanism of dinuclear copper iodide complexes with thermally activated delayed fluorescence

Supplementary files

Article information

Article type
Paper
Submitted
24 Mar 2019
Accepted
21 Jun 2019
First published
03 Jul 2019
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2019,9, 20786-20795

QM/MM studies on luminescence mechanism of dinuclear copper iodide complexes with thermally activated delayed fluorescence

Q. Wang, Y. Gao, T. Zhang, J. Han and G. Cui, RSC Adv., 2019, 9, 20786 DOI: 10.1039/C9RA02256B

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