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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Resonance Raman, Electron Paramagnetic Resonance, and Density Functional Theory Calculations of a Phenolate-Bound Iron Porphyrin Complex: Electrostatic versus Covalent Contribution to Bonding
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Resonance Raman, Electron Paramagnetic Resonance, and Density Functional Theory Calculations of a Phenolate-Bound Iron Porphyrin Complex: Electrostatic versus Covalent Contribution to Bonding

机译:酚盐结合的铁卟啉配合物的共振拉曼,电子顺磁共振和密度泛函理论计算:静电对共价键的贡献

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摘要

Resonance Raman (rR), electron paramagnetic resonance (EPR), and density functional theory (DFT) calculations of a phenolate-bound iron porphyrin complex are reported. The complex is found to exist in a five-coordinate high-spin state in a noncoordinating solvent and in a six-coordinate low-spin state in a coordinating solvent. The vibrations originating from the iron phenolate-bound chromophores reproduced those reported for heme tyrosine active sites in nature. The EPR parameters and iron-pyrrole (Fe-N_(pyr)) vibrations of phenolate, thiolate, and imidazole ligated iron porphyrin complexes indicate that the phenolate axial ligand acts as a π anisotropic ligand, which is more covalent than a neutral imidazole ligand but less covalent than a thiolate axial ligand. While the Fe~(III/II) potential of the phenolate compound in a noncoordinating solvent is 500 mV more negative than that of the imidazole-bound complex, it is also 110 mV more negative than that of the thiolate-bound complex. DFT calculations reproduce the geometry and vibrational frequencies and show that while both phenolate and thiolate axial ligands bear π and σ interaction with the ferric center, the former is significantly less covalent than the thiolate. The higher covalency of the thiolate ligand is responsible for the lower Fe-N_(pyr) vibration and higher V/λ (from EPR) of the thiolate-bound complexes relative to those of the phenolate-bound complex, whereas the greater electrostatic stabilization of the Fe~(III)-OPh bond is responsible for lowering the Fe~(III/II) E° of the phenolate-bound complex relative to that of the thiolate-bound complex in a medium having a reasonable dielectric constant.
机译:报道了酚盐结合的铁卟啉配合物的共振拉曼(rR),电子顺磁共振(EPR)和密度泛函理论(DFT)计算。发现该络合物在非配位溶剂中以五配位高旋转态存在,在配位溶剂中以六配位低旋态存在。源自酚铁结合发色团的振动重现了自然界中血红素酪氨酸活性位点的报道。酚盐,硫醇盐和咪唑连接的卟啉铁配合物的EPR参数和铁吡咯(Fe-N_(pyr))振动表明,酚盐轴向配体充当π各向异性配体,比中性咪唑配体更共价,但比硫醇盐轴向配体低共价。酚盐化合物在非配位溶剂中的Fe〜(III / II)电位比与咪唑键合的复合物的负电位高500 mV,但比与硫醇盐键合的复合物的负电位高110 mV。 DFT计算重现了几何形状和振动频率,并表明,虽然酚盐和硫醇盐的轴向配体都与铁中心具有π和σ相互作用,但前者的共价显着低于硫醇盐。相对于酚盐结合的配合物,硫醇盐配体的较高共价键引起较低的Fe-N_(pyr)振动和较高的V /λ(来自EPR),而酚盐结合的络合物的静电稳定性更高。在具有合理介电常数的介质中,Fe-(III)-OPh键负责降低酚盐结合的配合物相对于硫醇盐结合的配合物的Fe-(III / II)E°。

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