首页> 外文期刊>The Journal of Organic Chemistry >Effect of Lewis acid catalysts on Diels-Alder and hetero-Diels-Alder cycloadditions sharing a common transition state
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Effect of Lewis acid catalysts on Diels-Alder and hetero-Diels-Alder cycloadditions sharing a common transition state

机译:路易斯酸催化剂对共有过渡态的Diels-Alder和杂Diels-Alder环加成反应的影响

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[GRAPHICS] The thermal and Lewis acid catalyzed cycloadditions of beta,gamma-unsaturated alpha-ketophosphonates and nitroalkenes with cyclopentadiene have been explored by using density functional theory (DFT) methods. In both cases, only a single highly asynchronous bis-pericyclic transition state yielding both Diels-Alder and hetero-Diels-Alder cycloadducts could be located. Stepwise pathways were found to be higher in energy. On the potential energy surface, the bis-pericyclic cycloaddition transition state is followed by the Claisen rearrangernent transition state. No intermediates were located between these transition states. Claisen rearrangement transition states are also highly asynchronous, but bond lengths are skewed in the opposite direction compared to the bis-pericyclic transition states. The relative positions of the bis-pericyclic and Claisen rearrangement transition states may control periselectivity due to the shape of the potential energy surface and corresponding dynamical influences. Inspection of the thermal potential energy surface (PES) indicates that a majority of downhill paths after the bis-pericyclic transition state lead to the Diels-Alder cycloadducts, whereas a smaller number of downhill paths reach the hetero-Diels-Alder products with no intervening energy barrier. Lewis acid catalysts alter the shape of the surface by shifting the cycloaddition and the Claisen rearrangement transition states in opposite directions. This topographical change qualitatively affects the branching ratio after the bis-pericyclic transition state and ultimately reverses the periselectivity of the cycloaddition giving a preference for hetero-Diels-Alder cycloadducts.
机译:[图]使用密度泛函理论(DFT)方法研究了热和路易斯酸催化的β,γ-不饱和α-酮膦酸酯和硝基烯烃与环戊二烯的环加成反应。在这两种情况下,都只能找到同时产生Diels-Alder和杂Diels-Alder环加合物的单个高度异步的双周过渡态。发现逐步途径的能量更高。在势能表面上,双周环加成跃迁状态之后是克莱森重排跃迁状态。这些过渡态之间没有中间体。克莱森重排过渡态也高度异步,但与双周过渡态相比,键长在相反方向上偏斜。由于势能表面的形状和相应的动力学影响,双周环和克莱森重排过渡态的相对位置可以控制周选择性。对热势能面(PES)的检查表明,双周变过渡态之后的大部分下坡路径均导致Diels-Alder环加合物,而较少数量的下坡路径到达了杂Diels-Alder产品,而没有中间能量屏障。路易斯酸催化剂通过沿相反方向移动环加成和克莱森重排过渡态来改变表面形状。这种形貌变化定性地影响了双周环过渡态后的支化率,并最终逆转了环加成反应的选择性,从而优先考虑杂Diels-Alder环加成物。

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