Journal of Materials Chemistry C · 2014 · 82 citations · 67 references
EngineeringOrganic ElectronicsNovel IridiumSynthetic PhotochemistryChemistryLuminescence PropertyChemical EngineeringHybrid MaterialsThermally Activated Delayed FluorescenceInorganic ChemistryDominant 3MlctPhotochemistryOptoelectronic MaterialsNon-doped Feature1,2-Diphenyl-1h-benzoimidazole LigandsHigh-performance OledsOrganic Charge-transfer CompoundWhite OledApplied PhysicsLow Efficiency Roll-offOptoelectronics
Two novel iridium(III) complexes (pbi)2Ir(mtpy) (1) and (pbi)2Ir(pbim) (2) adopting 1,2-diphenyl-1H-benzoimidazole (Hpbi) as cyclometalated ligands were successfully synthesized and characterized. Strong emissions at 501 and 536 nm with high photoluminescence quantum yields of 48% and 91% in CH2Cl2 at 298 K were obtained for 1 and 2, respectively. The quantum chemical calculations and the photophysical properties indicated that the dominant 3MLCT (metal-to-ligand charge-transfer) state mixed with 3LLCT (ligand-to-ligand charge-transfer) and 3LC (ligand-centered 3π–π*) characters contributed to their phosphorescence emissions. Doped organic light-emitting diodes (OLEDs) based on 1 and 2 showed a peak current efficiency of 45.0 cd A−1 and power efficiency of 47.9 lm W−1 accompanied by very low efficiency roll-off values. In their non-doped OLEDs, high efficiencies of 24.4 cd A−1 and 26.3 lm W−1 were achieved as well. These appealing results reveal that complexes 1 and 2 open interesting perspectives for the development of high-performance OLEDs in the future.
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