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Reaction Mechanism of Li and Mg Carbenoid Cyclopropanations: Metal-π and σ Interactions

机译:Li和Mg类胡萝卜素环丙烷化反应机理:金属-π和σ相互作用

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摘要

The mechanism of the reaction of lithium and magnesium carbenoids with ethylene to give cyclopropane has been explained in detail in all the steps at the G4 level of theory. We explored the lithium and magnesium interaction toward πC═C and σC–C bonds in the reactants and the products. We have also investigated the reaction path by means of the force profile formalism in order to highlight the electronic and the structural rearrangements along the potential energy surface of the cyclopropanation. The results indicate that all of the reactions are stepwise, exoenergetic, with low barriers. All our findings were confirmed by dynamic simulations for chlorometal carbenoids. Furthermore, from the intrinsic reaction coordinate procedure, we were able to find out the intermediates that can take place when the reaction is descending from the transition state to the products or reactants. The reaction force analysis at B3LYP/6-311G(d,p) indicates that the energy barriers are mostly due to structural rearrangements which are produced by the approach of the carbenoid to ethylene. Quantum theory of atoms in molecules and electron localization function analyses indicate that products, reactants, and intermediates form complexes stabilized by attractive forces between Li/Mg and single/double bonds.
机译:锂和镁类胡萝卜素与乙烯反应生成环丙烷的机理已在G4的理论水平的所有步骤中进行了详细说明。我们探索了反应物和产物中锂和镁对πC═C和σC–C键的相互作用。我们还通过力分布形式学研究了反应路径,以突出沿着环丙烷化势能面的电子和结构重排。结果表明,所有反应都是逐步的,外能的,低障碍。我们所有的发现均通过对氯金属类胡萝卜素的动态模拟得到了证实。此外,从内在的反应协调程序,我们能够发现当反应从过渡态下降到产物或反应物时可能发生的中间体。在B3LYP / 6-311G(d,p)处的反作用力分析表明,能垒主要是由于类胡萝卜素接近乙烯而产生的结构重排。分子中原子的量子理论和电子定位功能分析表明,产物,反应物和中间体形成了通过Li / Mg与单键/双键之间的吸引力稳定的络合物。

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