Opoku Ernest, Tia Richard, Adei Evans
Theoretical and Computational Chemistry Laboratory, Department of Chemistry, Kwame Nkrumah University of Science and Technology, Kumasi, Ghana.
J Mol Graph Model. 2019 Nov;92:17-31. doi: 10.1016/j.jmgm.2019.06.019. Epub 2019 Jul 5.
The mechanisms of the tandem sequential [4 + 2]/[3 + 2] and [3 + 2]/[4 + 2] cycloaddition sequences involving an ester, cyclooctatetraene (COTE), and cyclic and acyclic nitrones for the formation of a diverse range of isoxazolidine derivatives and other synthetic precursors are reported. A thorough exploration of the PES has characterized several regio-, stereo- and enantio-selective mechanistic channels involved in these reactions. A perturbation molecular orbital (PMO) analysis been employed to rationalize the results. It has also been found that the initial electrocyclic ring closure of the COTE is the rate-determining step in the tandem sequential [4 + 2]/[3 + 2] addition sequence. The thermolytic breakdown of the tandem adducts to subsequent monocyclic, bicyclic and tricyclic adducts occurs generally with very high activation barriers making it an inconvenient synthetic approach. The different reactivity of all the three double bonds present in the dipolarophile is reported. Finally, the mechanistic possibilities of [3 + 2]/[4 + 2] addition sequences involving the same reaction components in the case of cyclic and acyclic nitrones are explored extensively. The results suggest a novel and convenient routes for obtaining products of high selectivity with less energetic requirements. In some instances, new cycloadducts hitherto unreported are obtained.
报道了串联顺序[4 + 2]/[3 + 2]和[3 + 2]/[4 + 2]环加成序列的反应机制,该反应涉及一种酯、环辛四烯(COTE)以及环状和非环状硝酮,用于形成多种异恶唑烷衍生物和其他合成前体。对势能面(PES)的深入探索确定了这些反应中涉及的几个区域、立体和对映选择性反应机制通道。采用微扰分子轨道(PMO)分析对结果进行合理化解释。还发现,COTE的初始电环化闭环是串联顺序[4 + 2]/[3 + 2]加成序列中的速率决定步骤。串联加合物热分解为后续的单环、双环和三环加合物通常具有非常高的活化能垒,这使得它成为一种不太方便的合成方法。报道了亲偶极体中存在的所有三个双键的不同反应活性。最后,广泛探索了在环状和非环状硝酮情况下涉及相同反应组分的[3 + 2]/[4 + 2]加成序列的反应机制可能性。结果表明,存在一种新颖且方便的途径,可用于获得具有较低能量需求的高选择性产物。在某些情况下,还获得了迄今未报道的新环加合物。