Department of Chemistry and Applied Bio-Sciences, ETH Zurich, Wolfgang-Pauli-Str. 10, 8093 Zurich, Switzerland.
J Org Chem. 2011 Dec 16;76(24):10236-40. doi: 10.1021/jo202176j. Epub 2011 Nov 23.
The conformational space of cyclooctene has been explored computationally in order to rationalize its high epoxidation selectivity. Four different conformations were identified. Each conformation is chiral and has two enantiomeric forms. The degeneracy is further increased by a ring-inversion process, yielding a total of 16 conformers. The potential energy surface for the interconversion of these conformers was characterized via intrinsic reaction coordinate analyses. Furthermore, an evaluation of the microcanonical partition functions allowed for a quantification of the entropy contributions and hence the calculation of the equilibrium composition at different temperatures. The results strongly suggest that the high epoxidation selectivity, typically observed for cyclooctene, is related to a poor σ(C-αH)-π(C═C) orbital overlap in the predominant conformation, disfavoring αH-abstraction by radical species and thus allylic byproduct formation via undesired homolytic side-reactions.
为了合理解释环辛烯的高环氧化选择性,我们通过计算对其构象空间进行了探索。确定了四种不同的构象。每个构象都是手性的,具有两种对映体形式。通过环翻转过程进一步增加了简并性,产生了总共 16 种构象。通过内禀反应坐标分析对这些构象的互变势能面进行了特征描述。此外,对微正则配分函数的评估允许量化熵贡献,从而计算不同温度下的平衡组成。结果强烈表明,通常观察到的环辛烯的高环氧化选择性与主要构象中 σ(C-αH)-π(C═C)轨道重叠不佳有关,不利于自由基物种的 αH 提取,从而避免了通过不需要的均裂副反应形成烯丙基副产物。