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The reaction mechanism of the enantioselective Tsuji allylation: inner-sphere and outer-sphere pathways internal rearrangements and asymmetric C–C bond formation

机译:对映选择性的Tsuji烯化的反应机制:内球和外球途径内部重排和不对称C-C键形成

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摘要

We use first principles quantum mechanics (density functional theory) to report a detailed reaction mechanism of the asymmetric Tsuji allylation involving prochiral nucleophiles and non-prochiral allyl fragments, which is consistent with experimental findings. The observed enantioselectivity is best explained with an inner-sphere mechanism involving the formation of a 5-coordinate Pd species that undergoes a ligand rearrangement, which is selective with regard to the prochiral faces of the intermediate enolate. Subsequent reductive elimination generates the product and a Pd0 complex. The reductive elimination occurs via an unconventional seven-centered transition state that contrasts dramatically with the standard three-centered C–C reductive elimination mechanism. Although limitations in the present theory prevent the conclusive identification of the enantioselective step, we note that three different computational schemes using different levels of theory all find that inner-sphere pathways are lower in energy than outer-sphere pathways. This result qualitatively contrasts with established allylation reaction mechanisms involving prochiral nucleophiles and prochiral allyl fragments. Energetic profiles of all reaction pathways are presented in detail.
机译:我们使用量子力学的第一原理(密度泛函理论)来报告不对称的Tsuji烯丙基化涉及前手性亲核试剂和非前手性烯丙基片段的详细反应机理,这与实验结果是一致的。用内球机理可以最好地解释所观察到的对映选择性,该内球机理涉及形成5配位的Pd物种,该物种经历了配体重排,该配体对中间烯醇前体表面具有选择性。随后的还原消除生成产物和Pd 0 络合物。还原消除通过非常规的七中心过渡态发生,这与标准的三中心CC还原消除机制形成了鲜明的对比。尽管本理论的局限性阻止了对映选择性步骤的结论性确定,但我们注意到,使用不同理论水平的三种不同计算方案都发现内层通道的能量低于外层通道的能量。该结果与涉及前手性亲核试剂和前手性烯丙基片段的已建立的烯丙基化反应机制在质量上形成对比。详细介绍了所有反应途径的能量分布。

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