A Nonheme Thiolate-Ligated Cobalt Superoxo Complex: Synthesis and Spectroscopic Characterization, Computational Studies, and Hydrogen Atom Abstraction Reactivity

Jesse B. Gordon, Avery Vilbert, Maxime A. Siegler, Kyle M. Lancaster, Pierre Moënne‐Loccoz, David P. Goldberg

Journal of the American Chemical Society · 2019 · 62 citations · 100 references

Abstract

The synthesis and characterization of a Co(II) dithiolato complex Co(Me<sub>3</sub>TACN)(S<sub>2</sub>SiMe<sub>2</sub>) (1) are reported. Reaction of 1 with O<sub>2</sub> generates a rare thiolate-ligated cobalt-superoxo species Co(O<sub>2</sub>)(Me<sub>3</sub>TACN)(S<sub>2</sub>SiMe<sub>2</sub>) (2) that was characterized spectroscopically and structurally by resonance Raman, EPR, and X-ray absorption spectroscopies as well as density functional theory. Metal-superoxo species are proposed to S-oxygenate metal-bound thiolate donors in nonheme thiol dioxygenases, but 2 does not lead to S-oxygenation of the intramolecular thiolate donors and does not react with exogenous sulfur donors. However, complex 2 is capable of oxidizing the O-H bonds of 2,2,6,6-tetramethylpiperidin-1-ol derivatives via H atom abstraction. Complementary proton-coupled electron-transfer reactivity is seen for 2 with separated proton/reductant pairs. The reactivity studies indicate that 2 can abstract H atoms from weak X-H bonds with bond dissociation free energy (BDFE) ≤ 70 kcal mol<sup>-1</sup>. DFT calculations predict that the putative Co(OOH) product has an O-H BDFE = 67 kcal mol<sup>-1</sup>, which matches the observed pattern of reactivity seen for 2. These data provide new information regarding the selectivity of S-oxygenation versus H atom abstraction in thiolate-ligated nonheme metalloenzymes that react with O<sub>2</sub>.

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