首页> 外文期刊>Organometallics >Density functional studies of 19-electron organometallic complexes: Investigation of possible ligand distortions and calculation of the EPR parameters and unpaired electron distributions in CpCr(CO)(2)No-, CpW(NO)(2)P(OMe)(3), CpMo(CO3)P(OMe)(3), and
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Density functional studies of 19-electron organometallic complexes: Investigation of possible ligand distortions and calculation of the EPR parameters and unpaired electron distributions in CpCr(CO)(2)No-, CpW(NO)(2)P(OMe)(3), CpMo(CO3)P(OMe)(3), and

机译:19电子有机金属配合物的密度泛函研究:CpCr(CO)(2)No-,CpW(NO)(2)P(OMe)(3)中可能的配体畸变的研究以及EPR参数和不成对电子分布的计算,CpMo(CO3)P(OMe)(3)和

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Density functional theory (DFT) was used to calculate the equilibrium geometries and EPR hyperfine coupling constants for the CpCr(CO)(2)NO- and CpW(NO)(2)P(OMe)(3) 19-electron complexes. The calculated EPR hyperfine parameters for both molecules were found to be in good agreement with the experimental values. The EPR study on CpCr(CO)(2)NO- indicated that the nitrosyl ligand bends significantly when the neutral 18-electron parent molecule is reduced. This was confirmed by the DFT calculations, although the degree of bending is not as large as that predicted from the EPR analysis. The calculated geometry for CpW(NO)2P(OMe)3 showed that the nitrosyl ligands are not significantly bent, which is consistent with the crystal structure of the related compound CpW(NO)(2)P(OPh)(3). In both CpCr(CO)(2)NO- and CpW(NO)(2)P(OMe)(3), the unpaired electron is localized to about the same extent on the NO ligands. It is concluded that, although distortion of a Ligand implies significant localization of the unpaired electron on that ligand, an undistorted ligand does not imply that the unpaired electron has no appreciable amplitude on that ligand, DFT was also applied to the 19-electron CpMo(CO)(3)P(OMe)(3) molecule, whose role as a key intermediate in photochemical reactions of Cp2Mo2(CO)(6) with P(OMe)(3) has been inferred from mechanistic studies. It was found that loss of P(OMe)(3) from CpMo(CO)(3)P(OMe)(3) is slightly thermodynamically favorable (Delta E = similar to 1 kcal/mol), This is consistent with the necessity of using an excess of the phosphorus ligand in reactions in which CpMo(CO)(3)PR3 is believed to be the electron-transfer agent. There is no indication of P(OMe)3 ligand distortion in this molecule, just as there is no indication of Cp ring slippage in any of the Cp-containing molecules. Finally, a calculation of the hyperfine coupling constants in the 18 + delta Co(CO)(3)L-2 (L-2 = 2,3-bis(diphenylphosphino)-maleic anhydride) complex was also carried out. The calculated values are in reasonable agreement with experiment. [References: 27]
机译:密度泛函理论(DFT)用于计算CpCr(CO)(2)NO-和CpW(NO)(2)P(OMe)(3)19电子络合物的平衡几何构型和EPR超精细偶联常数。发现两个分子的EPR超细参数都与实验值非常吻合。对CpCr(CO)(2)NO-的EPR研究表明,当中性18电子母体分子被还原时,亚硝酰基配体会明显弯曲。 DFT计算证实了这一点,尽管弯曲程度不如EPR分析所预测的那样大。 CpW(NO)2P(OMe)3的计算几何结构表明亚硝酰基配体没有明显弯曲,这与相关化合物CpW(NO)(2)P(OPh)(3)的晶体结构一致。在CpCr(CO)(2)NO-和CpW(NO)(2)P(OMe)(3)中,未配对的电子在NO配体上的定位程度大致相同。结论是,尽管配体的畸变意味着未配对电子在该配体上的明显定位,但未畸变的配体并不意味着未配对电子在该配体上没有明显的振幅,DFT也被应用于19电子CpMo(从机理研究中推断出了CO)(3)P(OMe)(3)分子,它是Cp2Mo2(CO)(6)与P(OMe)(3)光化学反应中的关键中间体。发现从CpMo(CO)(3)P(OMe)(3)中损失P(OMe)(3)在热力学上是有利的(Delta E =类似于1 kcal / mol),这与必要性是一致的在认为CpMo(CO)(3)PR3是电子转移剂的反应中使用过量的磷配体的方法。没有迹象表明此分子中存在P(OMe)3配体畸变,就像没有迹象表明任何含Cp的分子中存在Cp环滑移一样。最后,还进行了18 +δCo(CO)(3)L-2(L-2 = 2,3-双(二苯基膦基)-马来酸酐)配合物的超精细偶合常数的计算。计算值与实验合理吻合。 [参考:27]

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