Patel Kaushalendra, Marek Ilan
Schulich Faculty of Chemistry and the Resnick Sustainability Center for Catalysis, Technion - Israel Institute of Technology, Haifa, Israel.
Nat Chem. 2025 Mar 19. doi: 10.1038/s41557-025-01783-2.
Nucleophilic substitution at tetravalent (sp) carbon is a fundamental transformation in organic synthesis, essential for creating carbon-carbon and carbon-heteroatom bonds. While the mechanism of the S2 reaction is well understood, achieving stereochemical control in S1-type reactions remains extremely challenging due to the complexity of successive carbocation intermediates. Here we present a strategy for preparing complex molecular skeletons via stereospecific S1 at a quaternary stereocentre in acyclic systems. By leveraging neighbouring group participation, we facilitate the selective formation of a unique cyclopropylcarbinyl cation intermediate that undergoes selective nucleophilic substitution with high diastereoselectivity and complete inversion of configuration at a distant position from the original carbocation via molecular rearrangement. This methodology has been applied to generate homoallylic tertiary fluorides, bromides, chlorides, ethers, thiocyanates and azides, demonstrating its applicability in accessing diverse functional groups with exceptional diastereoselectivities. This transformation opens new avenues for constructing complex molecular architectures through precise stereocontrol of C-C bond cleavage at a quaternary stereocentre in acyclic systems.
四价(sp³)碳的亲核取代是有机合成中的一种基本转化反应,对于构建碳 - 碳键和碳 - 杂原子键至关重要。虽然Sₙ2反应的机理已被充分理解,但由于连续碳正离子中间体的复杂性,在Sₙ1型反应中实现立体化学控制仍然极具挑战性。在此,我们提出了一种策略,通过在无环体系的季立体中心进行立体专一性的Sₙ1反应来制备复杂的分子骨架。通过利用邻基参与,我们促进了一种独特的环丙基甲基碳正离子中间体的选择性形成,该中间体通过分子重排进行选择性亲核取代,具有高非对映选择性,且在远离原始碳正离子的位置构型完全翻转。该方法已被应用于生成高烯丙基叔氟化物、溴化物、氯化物、醚、硫氰酸盐和叠氮化物,证明了其在以优异的非对映选择性获得多种官能团方面的适用性。这种转化为通过在无环体系的季立体中心精确立体控制碳 - 碳键断裂来构建复杂分子结构开辟了新途径。