Rudolf Richard, Batman Derman, Mehner Niklas, Walter Robert R M, Sarkar Biprajit
Universität Stuttgart, Institut für Anorganische Chemie, Pfaffenwaldring 55, 70569, Stuttgart.
Chemistry. 2024 Jun 20;30(35):e202400730. doi: 10.1002/chem.202400730. Epub 2024 May 29.
We present herein the synthesis, characterization and complexation of ferrocenyl-substituted MIIs (mesoionic imines) and their metal complexes. In the free MIIs, strong hydrogen bonding interactions are observed between the imine-N and the C-H bonds of the ferrocenyl substituents both in the solid state and in solution. The influence of this hydrogen bonding is so strong that complexation of the MIIs with [IrCp*Cl] yields unique six-membered iridacycles via C-H-activation of the corresponding C-H-site at the Fc-substituent and not the Ph-substituent. This result is in contrast to previous reports in which always a preferential C-H activation at the phenyl substituent is observed in competitive reactions in the presence of ferrocenyl substituents. The corresponding Ir complexes formed after in-situ halide exchange reaction exist in either [Ir-I] contact or as [Ir]I solvent separated ion-pairs depending on the solvent polarity. The iodide coordinated and solvent separated ion-pairs display drastically different physical properties. The TEP (Tolman-electronic-parameter) of these ligands was determined and lines up with previously reported MII-ligands. The redox properties were investigated by a combination of electrochemical and spectroelectrochemical methods. We show here how non-covalent interactions can have a drastic influence on the physical and chemical properties of these new class of compounds.
我们在此展示了二茂铁基取代的中离子亚胺(MIIs)及其金属配合物的合成、表征和络合作用。在游离的MIIs中,无论是在固态还是溶液中,都观察到亚胺-N与二茂铁基取代基的C-H键之间存在强烈的氢键相互作用。这种氢键的影响非常强烈,以至于MIIs与[IrCp*Cl]的络合通过在Fc-取代基而非Ph-取代基处相应C-H位点的C-H活化产生独特的六元铱杂环。这一结果与之前的报道形成对比,在之前的报道中,在存在二茂铁基取代基的竞争反应中,总是观察到在苯基取代基处优先发生C-H活化。原位卤化物交换反应后形成的相应Ir配合物根据溶剂极性以[Ir-I]接触形式或[Ir]I溶剂分离离子对形式存在。碘化物配位和溶剂分离离子对表现出截然不同的物理性质。测定了这些配体的托尔曼电子参数(TEP),其与先前报道的MII-配体一致。通过电化学和光谱电化学方法相结合研究了氧化还原性质。我们在此展示了非共价相互作用如何对这类新型化合物的物理和化学性质产生巨大影响。