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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Detection and determination of the {Fe(NO)(2)} core vibrational features in dinitrosyl-iron complexes from experiment, normal coordinate analysis, and density functional theory: An avenue for probing the nitric oxide oxidation state
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Detection and determination of the {Fe(NO)(2)} core vibrational features in dinitrosyl-iron complexes from experiment, normal coordinate analysis, and density functional theory: An avenue for probing the nitric oxide oxidation state

机译:从实验,正态坐标分析和密度泛函理论检测和确定二亚硝酰基-铁络合物中{Fe(NO)(2)}的核振动特征:探索一氧化氮氧化态的途径

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摘要

As it is now well-established that nitric oxide plays an important role in many physiological processes, there is a renewed interest in dinitrosyl-iron complexes (DNICs). The question concerning the electronic structure of DNICs circles around the formal oxidation states of the iron and nitric oxide of the Fe(NO)(2) core. Previous infrared measurements of nu(NO) alone point out inconsistencies in assigning electron configurations and charges on metals, inherent from the measurement of one parameter external to the metal. This work represents the first experimental and theoretical attempt to assign vibrational modes for the {Fe(NO)(2)}(9) core of DNICs. The following complexes are investigated, [PPN][S5Fe(NO)(2)] (1), [PPN][Se5Fe(NO)(2)] (2), [PPN][(SPh)(2)Fe(NO)(2)] (3), and [PPN][(SePh)(2)Fe(NO)(2)] (4). The analysis of isotopically edited Raman data together with normal coordinate calculation permitted assignment of nu(NO) and nu(Fe-NO) stretching and delta(Fe-N-O) bending modes in these complexes. The assignments proposed are the first ever reported for the DNICs; a comparison of nu(NO) and nu(Fe-NO) stretching frequencies in DNICs is now feasible. The Fe(NO)(2) core electronic configuration in these complexes is described as {Fe1+((NO)-N-center dot)(2)}(9). Results from 1 and 3 have been complemented by density functional theory (DFT) frequency calculations. In addition to providing a reasonably correct account of the observed frequencies, DFT calculations also give a good account of the frequency shifts upon (NO)-N-15 substitution providing the first link between DFT and Raman spectroscopies for DNICs. Through the use of a combination of NO intraligand and metal-ligand vibrational data for the Fe(NO)(2) core, normal coordinate analysis gives a NO stretching force constant, which compared to molecular NO gas, is significantly reduced for all four complexes. The hybrid U-B3LYP/6-311++G(3d,2p) density functional method has been employed to analyze the molecular orbital compositions of predominantly NO orbitals based on the crystal structure of complex 1d. The molecular orbital not only revealed the bonding nature of the {Fe(NO)(2)}(9) core but also provided a qualitative correct account of the observed low NO vibrational frequencies. The calculation shows that the NO is involved in a strong donor bonding interaction with the Fe1+. This donor bonding interaction involves the 5 sigma molecular orbital of the NO, which is sigma-bonding with respect to the intramolecular NO bond, and removal of electron density from this orbital destabilizes the NO bond. Though it is too ambiguous to extrapolate a nu(Fe-NO)u(NO) correlation line for {Fe(NO)(2)}(9) DNICs based only on the data reported here, the feasibility of using a vibrational systematics diagram to extract the electron configurations and charges on metals is demonstrated based on the vibrational data available in the literature for iron-nitrosyl complexes. The data provided here can be used as a model for the determination of effective charges on iron and the bonding of nitric oxides to metals in DNICs.
机译:众所周知,一氧化氮在许多生理过程中起着重要的作用,因此人们对二亚硝基-铁络合物(DNIC)产生了新的兴趣。有关DNIC的电子结构的问题围绕着Fe(NO)(2)核的铁和一氧化氮的形式氧化态。以前仅对nu(NO)进行的红外测量表明,在金属上分配电子构型和电荷时存在不一致之处,这是金属外部参数的测量所固有的。这项工作代表了为DNIC的{Fe(NO)(2)}(9)磁芯分配振动模式的首次实验和理论尝试。研究了以下配合物,[PPN] [S5Fe(NO)(2)](1),[PPN] [Se5Fe(NO)(2)](2),[PPN] [(SPh)(2)Fe( NO)(2)](3)和[PPN] [(SePh)(2)Fe(NO)(2)](4)。同位素编辑拉曼数据的分析以及法向坐标计算允许在这些配合物中指定nu(NO)和nu(Fe-NO)拉伸以及δ(Fe-N-O)弯曲模式。提议的分配是DNIC首次报告的分配;在DNIC中比较nu(NO)和nu(Fe-NO)拉伸频率现在是可行的。这些配合物中的Fe(NO)(2)核心电子结构称为{Fe1 +((NO)-N-中心点)(2)}(9)。来自1和3的结果已由密度泛函理论(DFT)频率计算进行了补充。除了提供合理正确的观测频率说明外,DFT计算还可以很好地说明(NO)-N-15替代后的频移,从而为DNIC提供了DFT和拉曼光谱之间的第一联系。通过结合使用NO配体和金属配体的Fe(NO)(2)核振动数据,法向坐标分析提供了NO拉伸力常数,与分子NO气体相比,这四种配合物均显着降低。基于复合体1d的晶体结构,采用了混合U-B3LYP / 6-311 ++ G(3d,2p)密度泛函方法来分析主要为NO轨道的分子轨道组成。分子轨道不仅揭示了{Fe(NO)(2)}(9)核的键合性质,而且还为观察到的低NO振动频率提供了定性的正确解释。计算表明,NO参与了与Fe1 +的强供体键相互作用。该供体键相互作用涉及NO的5 sigma分子轨道,该5 sigma分子轨道相对于分子内NO键是sigma-键,并且从该轨道去除电子密度使NO键不稳定。虽然仅根据此处报告的数据来推断{Fe(NO)(2)}(9)DNIC的nu(Fe-NO)/ nu(NO)相关线太含糊,但使用振动系统学的可行性根据铁-亚硝酰基配合物的文献中的振动数据,证明了提取电子构型和金属电荷的示意图。此处提供的数据可用作确定铁上有效电荷以及DNIC中一氧化氮与金属结合的模型。

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