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Computer-Aided Design of Luminescent Linear N-Heterocyclic Carbene Copper(I) Pyridine Complexes. | LitMetric

Computer-Aided Design of Luminescent Linear N-Heterocyclic Carbene Copper(I) Pyridine Complexes.

Inorg Chem

Faculty of Chemistry and Chemical Biology , TU Dortmund University, Otto-Hahn-Strasse 6 , D-44227 Dortmund , Germany.

Published: May 2019

AI Article Synopsis

  • Multireference configuration interaction methods have been used to study the photophysical properties of NHC copper(I) pyridine complexes for designing efficient thermally activated delayed fluorescence (TADF) emitters in organic-light-emitting diodes.
  • The research shows that these complexes can effectively create excited triplet states with high quantum yield due to metal-to-ligand charge-transfer excitations, with significant roles played by intersystem crossing and spin-vibronic coupling.
  • By modifying the substituents on the carbene and pyridine ligands, researchers can adjust the emission wavelength from UV to the blue-green or green spectral region, enhancing the potential for practical applications in lighting and displays.

Article Abstract

Multireference configuration interaction methods including spin-orbit interactions have been employed to investigate the photophysical properties of various linear N-heterocyclic carbene (NHC) copper(I) pyridine complexes with the aim of designing performant thermally activated delayed fluorescence (TADF) emitters for use in organic-light-emitting diodes. Our theoretical results indicate that this structural motif is very favorable for generating excited triplet states with high quantum yield. The first excited singlet (S) and corresponding triplet state (T) are characterized by d → π metal-to-ligand charge-transfer (MLCT) excitations. Efficient intersystem crossing (ISC) and reverse ISC (rISC) between these states is mediated by a near-degenerate second triplet state (T) with large d → π contributions. Spin-vibronic coupling is strong and is expected to play a major role in the (r)ISC processes. The calculations reveal, however, that the luminescence is effectively quenched by locally excited triplet states if the NHC ligand carries two diisopropylphenyl (DIPP) substituents. When DIPP is replaced with 1-adamantyl residues, this quenching process is suppressed and TADF in the UV spectral regime is predicted to proceed at a rate of about 1/μs. The introduction of +I substituents on the carbene and -M substituents on the pyridine allows tuning of the emission wavelength from the UV to the blue-green or green spectral region.

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Source
http://dx.doi.org/10.1021/acs.inorgchem.9b00334DOI Listing

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