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◆ Coordination Chemistry Reviews2026-05-12· Chemistry

Predicting excited-state lifetimes in Cobalt(III) polypyridyl complexes: From quantum chemistry to nonadiabatic dynamics

Olga S. Bokareva, Leticia González, Sebastian Mai

原始摘要(英文原文)· Original abstract
Co(III) polypyridyl complexes have emerged as promising first-row transition metal alternatives to noble-metal chromophores, yet their excited-state lifetimes and relaxation mechanisms remain insufficiently understood. Here, we present computational strategies to predict excited-state lifetimes in the prototypical complex , integrating electronic structure theory, Marcus-type rate models, minimum-energy crossing point (MECP) analysis, and trajectory-based nonadiabatic dynamics simulations. Marcus theory is used to rationalize why Co(III) complexes operate in the inverted region, in contrast to isoelectronic Fe(II) systems, and explains how ligand-field tuning can simultaneously enhance redox power and prolong excited-state lifetimes. MECP-based transition-state theory yields nanosecond ground-state recovery times and reproduces the experimentally observed ligand-field trends across a series of substituted complexes. Beyond this static picture, surface hopping dynamics based on a parametrized linear vibronic coupling (LVC) Hamiltonian demonstrates that both sub-picosecond intersystem crossing and nanosecond triplet decay can be captured within a unified dynamical description. Analysis of nuclear motion reveals an impulsive Co–N bond elongation and coherent vibrational activity accompanying population transfer into the 3 MC manifold. We further derive practical guidelines for selecting the simulation time and number of trajectories in nonadiabatic dynamics studies targeting long-lived excited states. Together, these results establish a set of transferable computational strategies for predicting and rationalizing excited-state lifetimes in first-row transition metal complexes.
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Predicting excited-state lifetimes in Cobalt(III) polypyridyl complexes: From quantum chemistry to nonadiabatic dynamics — 科研速览 Science Skim