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arXiv · 2506.07682

The role of spin-orbit coupling and state-crossing topography in the non-radiative decay of Ir(III) complexes

Abstract

A pillar of our current understanding of the photoluminescence of Ir(III) complexes is the assumption that the population of triplet metal-centered states determines an efficient non-radiative decay to the ground state minimum. Based on that assumption, the energy separation between the emitting state and the minimum-energy crossing point of the triplet metal-centered and the ground states has been employed as a key variable for evaluating the ability of Ir(III) complexes to decay non-radiatively. We demonstrate that the strong spin-orbit coupling between the triplet metal-centered and the ground state of Ir(III) complexes, together with the sloped topography of their crossing, lead to a significant energy separation between the two states, resulting in a reduced rate of non-radiative ground state recovery. Therefore, we propose that the role of metal-centered states is defined by the tendency of the excited state population to remain trapped in the metal-centered minima.

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Ivan Soriano-Diaz, Ilya D. Dergachev, Sergey A. Varganov, Enrique Orti, Angelo Giussani. 2025-06-09. The role of spin-orbit coupling and state-crossing topography in the non-radiative decay of Ir(III) complexes. https://arxiv.org/abs/2506.07682

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