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Energetic differences between the five- and six-membered ring hydrocarbons: Strain energies in the parent and radical molecules

机译:五元和六元环烃之间的能量差异:母体和自由基分子中的应变能

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The C-H bond dissociation enthalpies (BDEs) for the five- and six-membered ring alkanes, alkenes, and dienes were investigated and discussed in terms of conventional strain energies (SEs). New determinations are reported for cyclopentane and cyclohexane by time-resolved photoacoustic calorimetry and quantum chemistry methods. The C-H BDEs for the alkenes yielding the alkyl radicals cyclopenten-4-yl and cyclohexen4-yl and the alpha-C-H BDE in cyclopentene were also calculated. The s-homodesmotic model was used to determine SEs for both the parent molecules and the radicals. When the appropriate s-homodesmotic model is chosen, the obtained SEs are in good agreement with the ones derived from group additivity schemes. The different BDEs in the title molecules are explained by the calculated SEs in the parent molecules and their radicals: (1) BDEs leading to alkyl radicals are ca. 10 U mol(-1) lower in cyclopentane and cyclopentene than in cyclohexane and cyclohexene, due to a smaller eclipsing strain in the five-membered radicals relative to the parent molecules (six-membered hydrocarbons and their radicals are essentially strain free). (2) C-H BDEs in cyclopentene and cyclohexene leading to the allyl radicals are similar because cyclopenten-3-yl has almost as much strain as its parent molecule, due to a synperiplanar configuration. (3) The C-H BDE in 1,3-cyclopentadiene is 27 U mol(-1) higher than in 1,4-cyclohexadiene due to the stabilizing effect of the conjugated double bond in 1,3-cyclopentadiene and not to a destabilization of the cyclopentadienyl radical. The chemical insight afforded by group additivity methods in choosing the correct model for SE estimation is highlighted.
机译:对五元和六元环烷烃,烯烃和二烯的C-H键离解焓(BDE)进行了研究,并根据常规应变能(SE)进行了讨论。据报道,通过时间分辨光声热法和量子化学方法对环戊烷和环己烷进行了新的测定。还计算了产生烷基环戊烯-4-基和环己烯4-基的烯烃的C-H BDE和环戊烯中的α-C-HBDE。 s-homodesmotic模型用于确定母体分子和自由基的SE。选择合适的s-homodesmotic模型后,所获得的SE与从群可加方案推导的SE良好吻合。标题分子中不同的BDE由母体分子及其基团中的SE计算得出:(1)导致烷基基团的BDE约为ca。环戊烷和环戊烯比环己烷和环己烯低10 U mol(-1),这是由于五元自由基相对于母体分子的蚀变较小(六元烃及其自由基基本无应变)。 (2)导致戊烯基的环戊烯和环己烯中的C-H BDE相似,这是因为环戊烯-3-基具有较高的应变,其结构同上平面。 (3)由于1,3-环戊二烯中共轭双键的稳定作用而不是使1,3-环戊二烯的CH BDE比1,4-环己二烯高27 U mol(-1)。环戊二烯基。重点介绍了通过群相加方法在选择正确的SE估计模型中提供的化学见解。

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