Periodic Reporting for period 1 - FeCHACT (Catalytic Csp3-H functionalization via carbene insertion meets sustainability: Developing an unprecedented Iron methodology)
Période du rapport: 2019-01-01 au 2020-12-31
More specifically, a variety of low coordinate iron compounds supported by “non-inocent” ortho-phenylenediamine ligands were synthesized. Fully study of the electronic configuration of the generated iron compounds by different characterization techniques (X-ray, NMR spectroscopy, Infrared spectroscopy) allowed to identify the most adequate ligand-iron pair for the targeted C-H functionalization reactions. Likewise, studying the interaction between the previous iron compounds and the carbene precursors (diazoester reagents) unravelled the factors behind the long-standing problem of using iron in these processes. Using this information, a new partnership between iron and lithium was born, which enables C(sp3)-H alkylation processes at room temperature. Application of this methodology has led to one-step synthesis of a wide variety of complex carbocyclic (mono and bis) compounds, otherwise requiring tedious and long synthetic protocols. Mechanistic studies were also performed suggesting a concerted process, in which the carbene fragment undergoes insertion into the targeted C-H bond forming two new C-C and C-C bonds, and generating the desired carbocyclic compound. The generated information has set the starting point for the most ambitious part of the proposed project as it is extension of this methodology to the intramolecular version, and isolation of iron-carbene species. Indeed applying the system derived from the previous study functionalization of plain hydrocarbons as pentane, hexane and cyclohexane has been achieved. Initial attempts to isolate iron-carbene intermediate species have proved to be feasible, evidenced by UV-Vis spectrophotometry. Encouraged by this observation we are trying to isolate these species and characterize them by single crystal X-ray crystallography.
Overall the worked performed in these five months fulfils the core of the project, aiming to develop a methodology capable to functionalize inert C(sp3)-H bonds present in nature as saturated alkanes (vast and low cost feedstock for organic synthesis). The generated data about intramolecular C-H functionalization iron mediated is under review for publication in a high impact factor journal.
The generated advances in the field are expected to have a major impact, appealing to the broad spectrum of synthetic chemists (organic, inorganic, organometallic, green) spanning both academia and industry, since a new atom-economical, sustainable, mild temperature and selective methodology for functionalising Csp3-H bonds has been achieved. Furthermore, considering that iron-mediated organic synthesis constitutes a hot topic, due to sustainability reasons, it is envisaged that these results will lead to high impact scientific results, with publication in high-ranking academic journals.