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超共轭而非空间排斥导致乙烷的交叉结构。

Hyperconjugation not steric repulsion leads to the staggered structure of ethane.

作者信息

Pophristic V, Goodman L

机构信息

Wright and Rieman Chemistry Laboratories, Rutgers University, New Brunswick, New Jersey 08903, USA.

出版信息

Nature. 2001 May 31;411(6837):565-8. doi: 10.1038/35079036.

Abstract

Many molecules can rotate internally around one or more of their bonds so that during a full 360 degrees rotation, they will change between unstable and relatively stable conformations. Ethane is the textbook example of a molecule exhibiting such behaviour: as one of its two methyl (CH3) groups rotates once around the central carbon-carbon bond, the molecule will alternate three times between an unstable eclipsed conformation and the preferred staggered conformation. This structural preference is usually attributed to steric effects; that is, while ethane rotates towards an eclipsed structure, the electrons in C-H bonds on the different C atoms are drawing closer to each other and therefore experience increased repulsion, introducing a rotation barrier that destabilizes the eclipsed structure. Stabilization of the staggered structure through rotation-induced weakening of the central C-C bond and hyperconjugation has been considered to be involved, but evaluation of the contributions of these effects to ethane's internal rotation barrier and conformational preference remains difficult. Here we report a series of ethane structure optimizations, where successive removal of different interactions indicates that ethane's staggered conformation is the result of preferential stabilization through hyperconjugation. Removal of hyperconjugation interactions yields the eclipsed structure as the preferred conformation, whereas repulsive forces, either present or absent, have no influence on the preference for a staggered conformation.

摘要

许多分子能够围绕其一个或多个化学键进行内旋转,因此在360度的完整旋转过程中,它们会在不稳定构象和相对稳定构象之间变化。乙烷是表现出这种行为的分子的典型例子:当其两个甲基(CH3)基团之一围绕中心碳 - 碳键旋转一次时,分子会在不稳定的重叠构象和更稳定的交叉构象之间交替三次。这种结构偏好通常归因于空间效应;也就是说,当乙烷旋转成重叠结构时,不同碳原子上C - H键中的电子彼此靠近,因此相互排斥增加,形成一个使重叠结构不稳定的旋转势垒。通过旋转引起的中心C - C键弱化和超共轭作用使交叉结构稳定,这一过程被认为与此有关,但评估这些效应在乙烷内旋转势垒和构象偏好中的贡献仍然很困难。在此,我们报告了一系列乙烷结构优化,其中连续去除不同相互作用表明乙烷的交叉构象是通过超共轭优先稳定的结果。去除超共轭相互作用会使重叠结构成为更稳定的构象,而排斥力无论是否存在,对交叉构象的偏好都没有影响。

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