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Transition states for the dimerization of 1,3-cyclohexadiene: A DFT, CASPT2, and CBS-QB3 quantum mechanical investigation

机译:1,3-环己二烯二聚化的过渡态:DFT,CASPT2和CBS-QB3量子力学研究

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摘要

Quantum mechanical calculations Using restricted and unrestricted B3LYP density functional theory, CASPT2, and CBS-QB3 methods for the dimerization of 1.3-cyclohexadiene (1) reveal several highly competitive concerted and stepwise reaction pathways leading to [4 + 2] and [2 + 2] cycloadducts, as well as a novel [6 + 4] ene product. The transition state for endo-[4 + 2] cycloaddition (endo-2TS, Delta H-B3LYP(0K)(double dagger) = 28.7 kcal/mol and H Delta(double dagger)(CBS-QB3(0K)) = 19.0 kcal/mol) is not bis-pericyclic, leading to nondegenerate primary and secondary orbital interactions. However. the C-s symmetric second-order saddle point on the B3LYP energy surface is only 0.3 kcal/mol above endo-2TS. The activation enthalpy for the concerted exo-[4 + 2] cycloaddition (exo-2TS, Delta H-B3LYP(0K)(double dagger) = 30.1 kcal/mol and AH(CBS-QB3(0K))(double dagger) = 21.1 kcal/mol) is 1.4 kcal/mol higher than that of the endo transition state. Stepwise pathways involving diallyl radicals are formed via two different C-C forming transition states (rac-5TS and meso-5TS) and are predicted to be competitive with the concerted cycloaddition. Transition states were located for cyclization from intermediate rac-5 leading to the endo-[4 + 2] (endo-2) and exo-[2 + 2] (anti-3) cycloadducts. Only the endo-[2 + 2] (syn-3) transition state was located for cyclization of intermediate meso-5. The novel [6 + 4] "concerted" ene transition state (threo-4TS, Delta H-UB3LYP(0K)(double dagger) = 28.3 kcal/mol) is found to be unstable with respect to an unrestricted calculation. This diradicaloid transition state closely resembles the cyclohexadiallyl radical rather than the linked cyclohexadienyl radical. Several [3,3] sigmatropic rearrangement transition states were also located and have activation enthalpies between 27 and 31 kcal/mol.
机译:量子力学计算使用受限制和不受限制的B3LYP密度泛函理论,CASPT2和CBS-QB3方法对1.3-环己二烯进行二聚化(1)揭示了几条竞争激烈的协同反应和逐步反应途径,导致了[4 + 2]和[2 + 2] ]环加合物,以及新型[6 + 4]烯烃产品。内-[4 + 2]环加成的过渡态(endo-2TS,Delta H-B3LYP(0K)(双匕首)= 28.7 kcal / mol和H Delta(double dagger)(CBS-QB3(0K))= 19.0 kcal / mol)不是双周环的,导致未退化的一次和二次轨道相互作用。然而。 B3LYP能量表面的Cs对称二阶鞍点仅比end-2TS高0.3 kcal / mol。协同的exo- [4 + 2]环加成反应的活化焓(exo-2TS,Delta H-B3LYP(0K)(双匕首)= 30.1 kcal / mol和AH(CBS-QB3(0K))(双匕首)= 21.1 kcal / mol)比内过渡态高1.4 kcal / mol。通过两个不同的C-C形成过渡态(rac-5TS和meso-5TS)形成涉及二烯丙基自由基的逐步途径,并预计与环加成反应具有竞争性。定位过渡态用于从中间体rac-5环化,导致内环[4 + 2](endo-2)和exo- [2 + 2](反3)环加合物。仅定位内-[2 + 2](syn-3)过渡态用于中间体meso-5的环化。对于不受限制的计算,发现新颖的[6 + 4]“一致”烯过渡态(threo-4TS,Delta H-UB3LYP(0K)(双匕首)= 28.3 kcal / mol)不稳定。该二基自由基过渡态非常类似于环己二烯丙基,而不是连接的环己二烯基。还定位了几个[3,3]σ重排过渡态,它们的活化焓在27和31 kcal / mol之间。

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