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A combined magnetic circular dichroism and density functional theory approach for the elucidation of electronic structure and bonding in three- and four-coordinate iron(II)–N-heterocyclic carbene complexes

机译:电磁圆二色性和密度泛函理论的组合方法用于阐明三和四坐标铁(II)-N-杂环卡宾配合物的电子结构和键

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Iron salts and N-heterocyclic carbene (NHC) ligands is a highly effective combination in catalysis, with observed catalytic activities being highly dependent on the nature of the NHC ligand. Detailed spectroscopic and electronic structure studies have been performed on both three- and four-coordinate iron(II)–NHC complexes using a combined magnetic circular dichroism (MCD) and density functional theory (DFT) approach that provide detailed insight into the relative ligation properties of NHCs compared to traditional phosphine and amine ligands as well as the effects of NHC backbone structural variations on iron(II)–NHC bonding. Near-infrared MCD studies indicate that 10Dq(Td) for (NHC)2FeCl2 complexes is intermediate between those for comparable amine and phosphine complexes, demonstrating that such iron(II)–NHC and iron(II)–phosphine complexes are not simply analogues of one another. Theoretical studies including charge decomposition analysis indicate that the NHC ligands are slightly stronger donor ligands than phosphines but also result in significant weakening of the Fe–Cl bonds compared to phosphine and amine ligands. The net result is significant differences in the d orbital energies in four-coordinate (NHC)2FeCl2 complexes relative to the comparable phosphine complexes, where such electronic structure differences are likely a significant contributing factor to the differing catalytic performances observed with these ligands. Furthermore, M?ssbauer, MCD and DFT studies of the effects of NHC backbone structure variations (i.e. saturated, unsaturated, chlorinated) on iron–NHC bonding and electronic structure in both three- and four-coordinate iron(II)–NHC complexes indicate only small differences as a function of backbone structure, that are likely amplified at lower oxidation states of iron due to the resulting decrease in the energy separation between the occupied iron d orbitals and the unoccupied NHC π* orbitals.
机译:铁盐和N-杂环卡宾(NHC)配体是催化中的高效组合,观察到的催化活性高度依赖于NHC配体的性质。使用结合的磁圆二色性(MCD)和密度泛函理论(DFT)的方法,对三坐标和四坐标的铁( II )-NHC配合物进行了详细的光谱和电子结构研究详细了解NHC与传统的膦和胺配体的相对连接特性,以及NHC主链结构变化对铁( II )-NHC键的影响。近红外MCD研究表明(NHC) 的10 Dq T d ) > 2 FeCl 2 配合物位于可比的胺和膦配合物之间,表明这种铁( II )– NHC和铁( II )-膦配合物不是简单的彼此类似物。包括电荷分解分析在内的理论研究表明,与膦和胺配体相比,NHC配体比膦更强的供体配体,但也导致Fe–Cl键显着弱化。最终结果是四坐标(NHC) 2 FeCl 2 配合物中d轨道能量的显着差异相对于可比的膦配合物,这种电子结构的差异可能是这些配体观察到的不同催化性能的重要贡献因素。此外,M?ssbauer,MCD和DFT研究了NHC主链结构变化(饱和,不饱和,氯化)对三坐标和四坐标铁中铁-NHC键和电子结构的影响。 ( II )– NHC配合物仅显示出作为骨架结构的函数的微小差异,由于铁占据的铁d轨道与铁的d轨道之间的能量间隔减小,在铁的较低氧化态下可能会放大空空的NHCπ*轨道。

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