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立体汇聚反应:烯烃混合物中高立体选择性的 H O 对反马氏加成的形式。

Converging Stereodivergent Reactions: Highly Stereoselective Formal anti-Markovnikov Addition of H O to Mixtures of Olefins.

机构信息

Kekulé-Institut für Organische Chemie und Biochemie, Universität Bonn, Gerhard-Domagk-Straße 1, 53121, Bonn, Germany.

出版信息

Chemistry. 2023 Jun 19;29(34):e202301031. doi: 10.1002/chem.202301031. Epub 2023 May 2.

Abstract

We describe a highly diastereo- and enantioselective two-step formal anti-Markovnikov addition of H O to diastereomeric mixtures of trisubstituted olefins. Our approach overcomes the limits of classical stereospecific addition reactions to olefins for the generation of adjacent stereocenters. In these stereospecific reactions, separation of olefin diastereomers is essential. Our method circumvents the need for such difficult separations by simultaneously employing both diastereomeric olefins in the organocatalytic, highly enantioselective, syn-specific Shi-epoxidation to yield diastereomeric oxiranes. The stereochemical model proposes the smallest substituent on the olefin to be stereodefining resulting in an identical enantiotopic approach for both olefin isomers on the less substituted carbon. By employing a stereoconverging epoxide hydrosilylation the identically configured center is retained, while the differing one is converted to a planar radical center that is reduced by a syn-selective intramolecular hydrogen atom transfer (HAT) from a Ti-H bond. The observed converging behavior can be attributed to a HAT-preceding directional isomerization step, that interconverts the obtained rotameric radicals which ultimately leads to high to excellent enantiomeric ratios of the final secondary alcohols.

摘要

我们描述了一种高度非对映和对映选择性的两步形式反 Markovnikov 添加 HO 到立体异构混合物的三取代烯烃。我们的方法克服了经典立体特异性加成反应对烯烃生成相邻立体中心的限制。在这些立体特异性反应中,分离烯烃的非对映异构体是必不可少的。我们的方法通过在有机催化、高对映选择性、顺式特异性 Shi-环氧化中同时使用两种非对映异构体的方法来避免这种困难的分离,从而生成非对映立体异构的环氧化物。立体化学模型提出烯烃上最小的取代基是立体定义的,结果是在取代较少的碳原子上,两个烯烃异构体具有相同的对映体接近方式。通过采用立体收敛的环氧化物硅氢化反应,保留相同构型的中心,而不同的构型转化为平面自由基中心,该自由基中心通过 Ti-H 键的顺选择性分子内氢原子转移(HAT)被还原。观察到的收敛行为可以归因于 HAT 优先的定向异构化步骤,该步骤互变获得的构象异构体自由基,最终导致最终仲醇的对映体过量值达到高至优秀。

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