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小环烃的应变能。C-H键离解能的影响。

Strain energy of small ring hydrocarbons. Influence of C-h bond dissociation energies.

作者信息

Bach Robert D, Dmitrenko Olga

机构信息

Department of Chemistry and Biochemistry, University of Delaware, Newark, Delaware 19716, USA.

出版信息

J Am Chem Soc. 2004 Apr 7;126(13):4444-52. doi: 10.1021/ja036309a.

DOI:10.1021/ja036309a
PMID:15053635
Abstract

Ab initio calculations at the G2, G3, and CBS-Q levels of theory have been applied to the question of the origin of ring strain in a series of unsaturated hydrocarbons. In addition to the angular ring strain germane to all three-membered ring hydrocarbons, a general trend is in evidence that suggests that the increased ring strain (SE) of unsaturated small ring alkenes may be attributed in part to their relatively weak allylic C-H bonds. The high strain energy of cyclopropene (54.1 kcal/ mol) is attributed largely to angular strain. The anomalously low SE of cyclobutene relative to cyclobutane (DeltaSE = 4 kcal/mol) is a consequence of normal C-H bond dissociation energies for cyclobutane (100.6 kcal/mol) and very strong vinyl C-H bonds (111.9 kcal/mol) and a relatively strong pi-bond energy (63.5 kcal/mol) for cyclobutene. The greater SE of methylenecyclopropane (39.5 kcal/ mol), relative to methylcyclopropane (29.8 kcal/mol), can be attributed to the strong ring C-H bonds of methylcyclopropane (110.5 kcal/mol) and relatively weak allylic C-H bonds (99.3 kcal/mol) of methylenecyclopropane. The increased SE of 1-methylcyclopropene relative to isomeric methylenecyclopropane is ascribed to its weak ring C-H bonds and to angular strain. The relative thermodynamic stability of a series of small ring alkenes is determined by a measure of their hydrogenation enthalpies. Independent confirmation of the SEs of a series of substituted cyclopropenes is provided by their dimerization/combination with cyclopropane to form a six-membered ring reference compound.

摘要

在G2、G3和CBS-Q理论水平上的从头算已应用于一系列不饱和烃中环张力起源的问题。除了与所有三元环烃相关的角张力外,一个普遍趋势很明显,即不饱和小环烯烃增加的环张力(SE)可能部分归因于其相对较弱的烯丙基C-H键。环丙烯的高张力能(54.1千卡/摩尔)主要归因于角张力。环丁烯相对于环丁烷的异常低的SE(ΔSE = 4千卡/摩尔)是环丁烷正常的C-H键离解能(100.6千卡/摩尔)、非常强的乙烯基C-H键(111.9千卡/摩尔)以及环丁烯相对较强的π键能(63.5千卡/摩尔)的结果。亚甲基环丙烷(39.5千卡/摩尔)相对于甲基环丙烷(29.8千卡/摩尔)更大的SE可归因于甲基环丙烷的强环C-H键(110.5千卡/摩尔)和亚甲基环丙烷相对较弱的烯丙基C-H键(99.3千卡/摩尔)。1-甲基环丙烯相对于异构体亚甲基环丙烷增加的SE归因于其弱的环C-H键和角张力。一系列小环烯烃的相对热力学稳定性通过它们氢化焓的测量来确定。一系列取代环丙烯的SEs通过它们与环丙烷二聚/结合形成六元环参考化合物得到独立证实。

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