Marotta Alessandro, Fang Hao, Adams Callum E, Sun Marcus Kailey, Daniliuc Constantin G, Molloy John J
Department of Biomolecular Systems, Max-Planck-Institute of Colloids and Interfaces, Am Mühlenberg 1, 14476, Potsdam, Germany.
Department of Chemistry and Biochemistry, Freie Universität Berlin, Arnimallee 22, 14195, Berlin, Germany.
Angew Chem Int Ed Engl. 2023 Aug 21;62(34):e202307540. doi: 10.1002/anie.202307540. Epub 2023 Jul 13.
Operationally simple strategies to assemble boron containing organic frameworks are highly enabling in organic synthesis. While conventional retrosynthetic logic has engendered many platforms focusing on the direct formation of C-B bonds, α-boryl radicals have recently reemerged as versatile open-shell alternatives to access organoborons via adjacent C-C bond formation. Direct light-enabled α-activation is currently contingent on photo- or transition metal-catalysis activation to efficiently generate radical species. Here, we disclose a facile activation of α-halo boronic esters using only visible light and a simple Lewis base to enable homolytic scission. Intermolecular addition to styrenes facilitates the rapid construction of highly versatile E-allylic boronic esters. The simplicity of activation permits the strategic merger of this construct with selective energy transfer catalysis to enable the complimentary stereodivergent synthesis of Z-allylic boronic esters.
在有机合成中,用于组装含硼有机骨架的操作简单的策略具有很强的推动作用。虽然传统的逆合成逻辑已经催生了许多专注于直接形成C-B键的平台,但α-硼基自由基最近重新成为一种通用的开壳替代物,可通过相邻的C-C键形成来获得有机硼化合物。目前,直接光致α-活化依赖于光催化或过渡金属催化活化,以有效产生自由基物种。在此,我们披露了一种仅使用可见光和简单路易斯碱就能实现α-卤代硼酸酯的简便活化,从而实现均裂。与苯乙烯的分子间加成有助于快速构建高度通用的E-烯丙基硼酸酯。活化的简单性允许将该构建体与选择性能量转移催化进行策略性合并,以实现Z-烯丙基硼酸酯的互补立体发散合成。