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茚基效应的本质。

The nature of the indenyl effect.

作者信息

Calhorda Maria José, Romão Carlos C, Veiros Luis F

机构信息

ITQB, Av. da República, EAN Apt 127, 2781-901 Oeiras, Portugal.

出版信息

Chemistry. 2002 Feb 15;8(4):868-75. doi: 10.1002/1521-3765(20020215)8:4<868::aid-chem868>3.0.co;2-i.

DOI:10.1002/1521-3765(20020215)8:4<868::aid-chem868>3.0.co;2-i
PMID:11857701
Abstract

The eta(5)-to-eta(3) coordination shift of cyclopentadienyl (Cp=C(5)H(5)(-)) and indenyl (Ind=C(9)H(7)(-)) ligands in molybdenocene complexes, (eta(5)-Cp')(eta(5)-Cp)Mo(CO)(2) (Cp'=Cp or Ind), driven by a two-electron reduction of those species, was studied and compared by means of molecular orbital calculations (B3LYP HF/DFT hybrid functional, DZP basis sets). The results obtained, in terms of optimized geometries, relative energies, and bond analysis parameters, compare well with the experimental data, and verify the well-known indenyl effect, that is, a significantly more facile eta(5)-to-eta(3) rearrangement for the indenyl ligand when compared to cyclopentadienyl. However, the study of the folding of free Cp and Ind, combined with the (eta(5/3)-Cp')-M bond analysis, shows that the observed difference is not the result of an intrinsic characteristic of the indenyl ligand, such as the traditionally accepted aromaticity gain in the benzene ring formed in eta(3)-Ind complexes. Instead, it is directly related to the Cp'-M bond strength. While the difference in the energy required to fold the two free ligands is negligible (< or =1 kcal mol(-1) for folding angles up to 20 degrees), the (eta(5)-Cp)-M bond is stronger than that of (eta(5)-Ind)-M; however, the opposite situation is found for the eta(3) coordination mode. The net result, for Cp'=Ind, is a destabilization of the eta(5) complexes and a stabilization of the eta(3) intermediates or transition states yielding smaller activation energies and faster reaction rates for processes in which that is the rate-determining step.

摘要

通过分子轨道计算(B3LYP HF/DFT混合泛函,DZP基组)研究并比较了茂金属配合物[(η⁵-Cp')(η⁵-Cp)Mo(CO)₂]²⁺(Cp' = Cp或Ind)中,环戊二烯基(Cp = C₅H₅⁻)和茚基(Ind = C₉H₇⁻)配体在两电子还原驱动下的η⁵到η³配位转变。从优化的几何结构、相对能量和键分析参数方面获得的结果与实验数据吻合良好,并验证了著名的茚基效应,即与环戊二烯基相比,茚基配体的η⁵到η³重排明显更容易。然而,对游离Cp和Ind的折叠研究,结合(η⁵/³-Cp')-M键分析表明,观察到的差异并非茚基配体固有特性的结果,例如传统上认为的在η³-Ind配合物中形成的苯环芳香性增加。相反,它与Cp'-M键强度直接相关。虽然折叠两个游离配体所需能量的差异可以忽略不计(对于高达20度的折叠角,≤1 kcal mol⁻¹),但(η⁵-Cp)-M键比(η⁵-Ind)-M键更强;然而,对于η³配位模式,情况则相反。对于Cp' = Ind,最终结果是η⁵配合物不稳定,η³中间体或过渡态稳定,对于速率决定步骤为该过程的反应,其活化能更小,反应速率更快。

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