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首页> 外文期刊>Journal of Physical Organic Chemistry >Stereoelectronic effects in Menshutkin-type SN2 reactions: theoretical study based on through-space/bond orbital interaction analysis
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Stereoelectronic effects in Menshutkin-type SN2 reactions: theoretical study based on through-space/bond orbital interaction analysis

机译:Menshutkin型SN2反应中的立体电子效应:基于穿空/键轨道相互作用分析的理论研究

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摘要

Through-space/bond orbital interaction analysis has been applied to investigate the stereoelectronic effects on stabilizing the transition state of Menshutkin-type S_N2 reactions. The mechanism of how the substituent effects work on accelerating the reactions has been demonstrated from orbital interaction perspective. The geometrical structures and Mulliken charge distributions have been compared to elucidate the substituent effects for the S_N2 reaction center. It is found that the substituents lower the activation energies by strengthening the orbital interactions in the S_N2 reaction process. When electron-donating and electron-accepting substituents (–C6H5 and –CHO) are introduced to the same central carbon at the reaction center, the symmetry allows the π–π* interactions among the donor and acceptor in the transition state. It stabilizes the transition state much more than the reactant complex. And the π–π* interactions are estimated to decrease about 2.28 kcal/mol of the energy for transition state. The σ-like orbitals of the partial bond around the central carbon are reactive, and the σ–π* orbital interactions stabilize the reactant complex much more than the π–σ* interaction. When the σ–π* and π–σ* interactions are deleted from the system, the activation energy increases and turns close to the values of the systems which are without such substituents. It can be concluded that the π–π*, σ–π*, and π–σ* interactions cooperatively accelerates the SN2 reaction by stabilizing its transition state.
机译:通过空间/键轨道相互作用分析来研究立体电子效应对稳定Menshutkin型S_N2反应过渡态的影响。从轨道相互作用的角度已经证明了取代基作用如何促进反应的机理。比较了几何结构和Mulliken电荷分布,以阐明S_N2反应中心的取代基效应。发现取代基通过增强S_N2反应过程中的轨道相互作用而降低了活化能。当给电子和受电子取代基(–C6H5和–CHO)被引入反应中心的同一中心碳原子时,对称性使得过渡态的供体和受体之间存在π–π *相互作用。与反应物配合物相比,它更能稳定过渡态。并且据估计,π–π *相互作用可降低跃迁态能量的约2.28 kcal / mol。中心碳周围的部分键的σ样轨道具有反应性,并且σ-π*轨道相互作用比π-σ*相互作用更稳定反应物配合物。当从系统中删除σ–π *和π–σ *相互作用时,活化能增加,并接近于没有此类取代基的系统的值。可以得出结论,π–π *,σ–π *和π–σ *相互作用通过稳定SN2的过渡态来协同加速SN2反应。

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