Inorganic Chemistry · 2020 · 22 citations · 80 references
Transition-metal-based donor-acceptor systems can produce long-lived excited charge-transfer states by visible-light irradiation. The novel ruthenium(II) polypyridyl type complexes <b>Ru1</b> and <b>Ru2</b> based on the dipyridophenazine ligand (<b>L0</b>) directly linked to 4-hydroxythiazoles of different donor strengths were synthesized and photophysically characterized. The excited-state dynamics were investigated by femtosecond-to-nanosecond transient absorption and nanosecond emission spectroscopy complemented by time-dependent density functional theory calculations. These results indicate that photoexcitation in the visible region leads to the population of both metal-to-ligand charge-transfer (<sup>1</sup>MLCT) and thiazole (tz)-induced intraligand charge-transfer (<sup>1</sup>ILCT) states. Thus, the excited-state dynamics is described by two excited-state branches, namely, the population of (i) a comparably short-lived phenazine-centered <sup>3</sup>MLCT state (τ ≈ 150-400 ps) and (ii) a long-lived <sup>3</sup>ILCT state (τ ≈ 40-300 ns) with excess charge density localized on the phenazine and tz moieties. Notably, the ruthenium(II) complexes feature long-lived dual emission with lifetimes in the ranges τ<sub>Em,1</sub> ≈ 40-300 ns and τ<sub>Em,2</sub> ≈ 100-200 ns, which are attributed to emission from the <sup>3</sup>ILCT and <sup>3</sup>MLCT manifolds, respectively.
80
Aleksandr V. Marenich, Christopher J. Cramer, Donald G. Truhlar · The Journal of Physical Chemistry B · 2009 · 16.7K citations