Base-free transfer hydrogenation of carbonyl substrates catalysed by neutral ruthenium(salicylaldimine) complexes: Inhibitory effect of visible light

[Display omitted] •Facile preparation of new Ru-salicylaldimine complexes.•Light-sensitive Ru-complex forms under prolonged exposure.•Efficient base-free catalysts with low loadings.•Catalyst exhibits functional group tolerance.•Inner-sphere mechanism via oxidation addition is proposed. In this stud...

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Veröffentlicht in:Results in Chemistry 2024-12, Vol.12, p.101870, Article 101870
Hauptverfasser: Visagie, N., Joseph, M.C., Maggott, E.D., Mapolie, S.F.
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Sprache:eng
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Zusammenfassung:[Display omitted] •Facile preparation of new Ru-salicylaldimine complexes.•Light-sensitive Ru-complex forms under prolonged exposure.•Efficient base-free catalysts with low loadings.•Catalyst exhibits functional group tolerance.•Inner-sphere mechanism via oxidation addition is proposed. In this study, a series of neutral ruthenium salicylaldimine complexes were synthesized and evaluated as catalysts for the base-free transfer hydrogenation of carbonyl compounds, including acetophenone. Under base-free conditions, the complexes demonstrated high catalytic activity, achieving conversions of up to 79 % for acetophenone with a turnover number (TON) of 790 after 2 h at 82 °C. Comparatively, when a base (2 mol% KOH) was used, the conversion dropped to 17–25 %. Extending the reaction time to 3 h under base-free conditions increased the conversion to 90 %, with a TON of 900. The catalysts were also tested on a range of substrates: acetophenone derivatives with electron-donating substituents showed conversions up to 89 %, while electron-withdrawing groups resulted in lower conversions (67 %). Additionally, sterically hindered substrates like benzophenone yielded 72 % conversion. Visible light exposure significantly reduced catalytic activity, resulting in up to a 26 % decrease in conversion due to the formation of an inactive bis(salicylaldimine) ruthenium species. Mechanistic studies revealed that the reaction proceeds via an oxidative addition pathway, with the formation of a ruthenium-hydride intermediate confirmed by NMR and FT-IR spectroscopy.
ISSN:2211-7156
2211-7156
DOI:10.1016/j.rechem.2024.101870