Wu Judy I-Chia, Wang Changwei, McKee William Chadwick, Schleyer Paul von Ragué, Wu Wei, Mo Yirong
Department of Chemistry, University of Georgia, Athens, GA, 30602, USA,
J Mol Model. 2014 Jun;20(6):2228. doi: 10.1007/s00894-014-2228-2. Epub 2014 Jun 10.
The conventional view that the σCC and σCH bonds in alkanes and unsaturated hydrocarbons are so highly localized that their non-steric interactions are negligible is scrutinized by the block-localized wavefunction (BLW) method. Even molecules considered conventionally to be "strain free" and "unperturbed" have surprisingly large and quite significant total σ-BLW-delocalization energies (DEs) due to their geminal and vicinal hyperconjugative interactions. Thus, the computed BLW-DEs (in kcal mol(-1)) for the antiperiplanar conformations of the n-alkanes (C(N)H(2N+2), N = 1-10) range from 11.6 for ethane to 82.2 for n-decane and are 50.9 for cyclohexane and 91.0 for adamantane. Although σ-electron delocalization in unsaturated hydrocarbons usually is ignored, the σ-BLW-DEs (in kcal mol(-1)) are substantial, as exemplified by D2h ethylene (9.0), triplet D2d ethylene (16.4), allene (19.3), butadiene (19.0), hexatriene (28.3), benzene (28.1), and cyclobutadiene (21.1). While each individual geminal and vicinal hyperconjugative interaction between hydrocarbon σ-bonding and σ-antibonding orbitals tends to be smaller than an individual π conjugative interaction (e.g., 10.2 kcal mol(-1) in anti-1,3-butadiene, the presence of many σ-hyperconjugative interactions (e.g., a total of 12 in anti-1,3-butadiene, see text), result in substantial total σ-stabilization energies (e.g., 19.0 kcal mol(-1) for butadiene), which may surpass those from the π interactions. Although large in magnitude, σ-electron delocalization energies often are obscured by cancellation when two hydrocarbons are compared. Rather than being strain-free, cyclohexane, adamantane, and diamantane suffer from their increasing number of intramolecular 1,4-C…C repulsions resulting in elongated C-C bond lengths and reduced σ-hyperconjugation, compared to the (skew-free) antiperiplanar n-alkane conformers. Instead of being inconsequential, σ-bond interactions are important and merit consideration.
烷烃和不饱和烃中σCC键和σCH键高度定域,以至于其非空间相互作用可忽略不计,这种传统观点受到了块定域波函数(BLW)方法的审视。即使是传统上被认为“无应变”和“未受扰动”的分子,由于其偕位和邻位超共轭相互作用,也具有惊人的大且相当显著的总σ - BLW离域能(DEs)。因此,正构烷烃(C(N)H(2N + 2),N = 1 - 10)反式共平面构象的计算BLW - DEs(单位:kcal mol(-1))范围从乙烷的11.6到正癸烷的82.2,环己烷为50.9,金刚烷为91.0。尽管不饱和烃中的σ电子离域通常被忽略,但σ - BLW - DEs(单位:kcal mol(-1))相当可观,例如D2h乙烯(9.0)、三重态D2d乙烯(16.4)、丙二烯(19.3)、丁二烯(19.0)、己三烯(28.3)、苯(28.1)和环丁二烯(21.1)。虽然烃类σ键合轨道和σ反键轨道之间的每个单独的偕位和邻位超共轭相互作用往往小于单个π共轭相互作用(例如,反式 - 1,3 - 丁二烯中为10.2 kcal mol(-1)),但许多σ超共轭相互作用的存在(例如,反式 - 1,3 - 丁二烯中共有12个,见正文)导致了可观的总σ稳定能(例如,丁二烯为19.0 kcal mol(-1)),这可能超过π相互作用产生的稳定能。尽管σ电子离域能数值较大,但在比较两种烃类时,其往往会因相互抵消而难以显现。与(无扭曲)反式共平面正构烷烃构象相比,环己烷、金刚烷和双金刚烷并非无应变,而是因分子内1,4 - C…C排斥作用的增加,导致C - C键长伸长,σ超共轭作用减弱。σ键相互作用并非无关紧要,而是很重要,值得考虑。