Department of Chemistry, Chemistry Research Laboratory, University of Oxford , 12 Mansfield Road, Oxford, OX1 3TA, U.K.
J Am Chem Soc. 2017 Apr 19;139(15):5614-5624. doi: 10.1021/jacs.7b02440. Epub 2017 Apr 10.
Mechanistic studies on Cu-catalyzed asymmetric additions of alkylzirconocene nucleophiles to racemic allylic halide electrophiles were conducted using a combination of isotopic labeling, NMR spectroscopy, kinetic modeling, structure-activity relationships, and new reaction development. Kinetic and dynamic NMR spectroscopic studies provided insight into the oligomeric Cu-ligand complexes, which evolve during the course of the reaction to become faster and more highly enantioselective. The Cu-counterions play a role in both selecting different pathways and in racemizing the starting material via formation of an allyl iodide intermediate. We quantify the rate of Cu-catalyzed allyl iodide isomerization and identify a series of conditions under which the formation and racemization of the allyl iodide occurs. We developed reaction conditions where racemic allylic phosphates are suitable substrates using new phosphoramidite ligand D. D also allows highly enantioselective addition to racemic seven-membered-ring allyl chlorides for the first time. H and H NMR spectroscopy experiments on reactions using allylic phosphates showed the importance of allyl chloride intermediates, which form either by the action of TMSCl or from an adventitious chloride source. Overall these studies support a mechanism where complex oligomeric catalysts both racemize the starting material and select one enantiomer for a highly enantioselective reaction. It is anticipated that this work will enable extension of copper-catalyzed asymmetric reactions and provide understanding on how to develop dynamic kinetic asymmetric transformations more broadly.
使用同位素标记、NMR 光谱学、动力学建模、构效关系和新反应开发的方法,对铜催化的手性烷基锆亲核试剂与外消旋烯丙基卤化物亲电试剂的不对称加成反应进行了机理研究。动力学和动态 NMR 光谱研究深入了解了寡聚 Cu-配体配合物,这些配合物在反应过程中不断演变,变得更快、对映选择性更高。Cu-抗衡离子在选择不同途径以及通过形成烯丙基碘化物中间体使起始物料外消旋化方面都发挥了作用。我们定量了 Cu 催化的烯丙基碘化物异构化的速率,并确定了一系列条件,在这些条件下,烯丙基碘化物的形成和外消旋化发生。我们开发了使用新的磷酰胺配体 D 的条件,使得外消旋烯丙基膦酸盐成为合适的底物。D 还首次允许对外消旋的七元环烯丙基氯化物进行高度对映选择性加成。使用烯丙基膦酸盐进行反应的 H 和 H NMR 光谱实验表明,烯丙基氯中间体的重要性,这些中间体可以通过 TMSCl 的作用或由偶然的氯源形成。总的来说,这些研究支持一种复杂的寡聚催化剂既能使起始物料外消旋化,又能选择一种对映体进行高度对映选择性反应的机制。预计这项工作将能够扩展铜催化的不对称反应,并提供更广泛地开发动态动力学不对称转化的理解。