AI Article Synopsis

  • - The study focuses on developing bioinspired non-heme iron catalysts to improve the effectiveness of Iodosilarene derivatives, specifically PhI(OAc), in C-H activation and hydroxylation of triphenylmethane.
  • - It emphasizes the impact of reaction conditions, such as co-ligands and oxidants, on product yields and reaction kinetics, employing both stoichiometric and catalytic methods to study these reactions.
  • - The findings highlight the electrophilic nature of iron(III)-iodozilarene complexes as essential for the oxidation process and reveal a correlation between hydroxylation rates and the redox potentials of iron, indicating that metal center properties significantly affect reactivity.

Article Abstract

Iodosilarene derivatives (PhIO, PhI(OAc)) constitute an important class of oxygen atom transfer reagents in organic synthesis and are often used together with iron-based catalysts. Since the factors controlling the ability of iron centers to catalyze alkane hydroxylation are not yet fully understood, the aim of this report is to develop bioinspired non-heme iron catalysts in combination with PhI(OAc), which are suitable for performing C-H activation. Overall, this study provides insight into the iron-based ([Fe(PBI)(CFSO)] (), where PBI = 2-(2-pyridyl)benzimidazole) catalytic and stoichiometric hydroxylation of triphenylmethane using PhI(OAc), highlighting the importance of reaction conditions including the effect of the co-ligands (-substituted pyridines) and oxidants (-substituted iodosylbenzene diacetates) on product yields and reaction kinetics. A number of mechanistic studies have been carried out on the mechanism of triphenylmethane hydroxylation, including C-H activation, supporting the reactive intermediate, and investigating the effects of equatorial co-ligands and coordinated oxidants. Strong evidence for the electrophilic nature of the reaction was observed based on competitive experiments, which included a Hammett correlation between the relative reaction rate (log) and the σ (4R-Py and 4R'-PhI(OAc)) parameters in both stoichiometric (ρ = +0.87 and +0.92) and catalytic (ρ = +0.97 and +0.77) reactions. The presence of [(PBI)(4R-Py)FeOIPh-4R'] intermediates, as well as the effect of co-ligands and coordinated oxidants, was supported by their spectral (UV-visible) and redox properties. It has been proven that the electrophilic nature of iron(III)-iodozilarene complexes is crucial in the oxidation reaction of triphenylmethane. The hydroxylation rates showed a linear correlation with the Fe/Fe redox potentials (in the range of -350 mV and -524 mV), which suggests that the Lewis acidity and redox properties of the metal centers greatly influence the reactivity of the reactive intermediates.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11357111PMC
http://dx.doi.org/10.3390/molecules29163842DOI Listing

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