Non-radiative decay and stability of -heterocyclic carbene iridium(III) complexes
arXiv:1803.02930 · doi:10.1021/acs.inorgchem.8b00800
Abstract
Devices based on deep-blue emitting iridium (III) complexes with N-heterocyclic carbene (NHC) ligands have recently been shown to give excellent performance as phosphorescent organic light-emitting diodes (PHOLEDs). To facilitate the design of even better deep-blue phosphorescent emitters we carried out density functional theory (DFT) calculations of the lowest triplet () potential-energy surfaces (PES) upon lengthening the iridium-ligand (Ir-C) bonds. Relativistic time dependent-DFT (TDDFT) calculations demonstrate that this changes the nature of from a highly-emissive metal-to-ligand charge transfer (MLCT) state to a metal centered (MC) state where the radiative decay rate is orders of magnitude slower than that of the MLCT state. We identify the elongation of an Ir-C bond on the NHC group as the pathway with lowest energy barrier between the MLCT and MC states for all complexes studied and show that the barrier height is correlated with the experimentally measured non-radiative decay rate. This suggests that the thermal population of MC states is the dominant non-radiative decay mechanism at room temperature. We show that the MLCT MC transition is reversible, in marked contrast to other deep blue phosphors containing coordinating nitrogen atoms, where the population of MC states breaks Ir-N bonds. This suggests that, as well as improved efficiency, blue PHOLEDs containing phosphors where the metal is only coordinated by carbon atoms will have improved device lifetimes.
15 pages, 4 figures, 3 tables