Predicting Nonradiative Decay Rate Constants of Cyclometalated Ir(III) Complexes.
Iván Soriano-DíazEnrique OrtíAngelo GiussaniPublished in: Inorganic chemistry (2024)
The theoretical calculation of the temperature-dependent nonradiative decay rate constant is fundamental for predicting the usefulness of transition-metal complexes for technological applications. Such a computation implies the determination of the barriers separating the emitting triplet state from metal-centered states, which are key mediators of this type of radiationless relaxation. We here do so for the two green-emitting cyclometalated Ir(III) complexes, [Ir(ppy) 2 (pyim)] + and [Ir(diFppy) 2 (dtb-bpy)] + , of general formula [Ir(C ∧ N) 2 (N ∧ N)] + , performing DFT calculations with both B3LYP and PBE0 functionals. On the basis of the obtained results and the comparison with the experimental nonradiative decay rate constants, we conclude that B3LYP provides too low energy barriers to the metal-centered states, while the PBE0 provides reasonable values. We consequently recommend to avoid the use of the commonly employed B3LYP functional for the evaluation of such an energy barrier for cyclometalated Ir(III) complexes.