Hydrogen atom abstraction as a synthetic route to a square planar Co II complex with a redox-active tetradentate PNNP ligand
Redox-active ligands improve the reactivity of transition metal complexes by facilitating redox processes independent of the transition metal center. A tetradentate square planar (PNCH CH NP)Co (1) complex was synthesized and the ethylene backbone was dehydrogenated through hydrogen atom abstraction...
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Veröffentlicht in: | Chemical science (Cambridge) 2024-09, Vol.15 (37), p.15311-15320 |
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Hauptverfasser: | , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Redox-active ligands improve the reactivity of transition metal complexes by facilitating redox processes independent of the transition metal center. A tetradentate square planar (PNCH
CH
NP)Co
(1) complex was synthesized and the ethylene backbone was dehydrogenated through hydrogen atom abstraction to afford (PNCHCHNP)Co
(2), which now contains a redox-active ligand. The ligand backbone of 2 can be readily hydrogenated with H
to regenerate 1. Reduction of 1 and 2 with KC
in the presence of 18-crown-6 results in cobalt-based reductions to afford [(PNCH
CH
NP)Co
][K(18-crown-6)] (3) and [(PNCHCHNP)Co
][K(18-crown-6)] (4), respectively. Cyclic voltammetry revealed two reversible oxidation processes for 2, presumed to be ligand-based. Following treatment of 2 with one equivalent of FcPF
, the one-electron oxidation product {[(PNCHCHNP)Co
(THF)][PF
]}·THF (5) was obtained. Treating 5 with an additional equivalent of FcPF
affords the two-electron oxidation product [(PNCHCHNP)Co
][PF
]
(6). Addition of PMe
to 5 produced [(PNCHCHNP)Co
(PMe
)][PF
] (7). A host of characterization methods including nuclear magnetic resonance (NMR) spectroscopy, electron paramagnetic resonance (EPR) spectroscopy, cyclic voltammetry, magnetic susceptibility measurements using SQUID magnetometry, single-crystal X-ray diffraction, and density functional theory calculations were used to assign 5 and 6 as ligand-based oxidation products of 2. |
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ISSN: | 2041-6520 2041-6539 |
DOI: | 10.1039/d4sc03364g |