Zhou Jun, Zhao Zhengyu, Mori Soichiro, Yamamoto Katsuhiro, Shibata Norio
Department of Nanopharmaceutical Sciences, Nagoya Institute of Technology Gokiso, Showa-ku Nagoya 466-8555 Japan
Department of Life Science and Applied Chemistry, Nagoya Institute of Technology Gokiso, Showa-ku Nagoya 466-8555 Japan.
Chem Sci. 2024 Mar 1;15(14):5113-5122. doi: 10.1039/d3sc06617g. eCollection 2024 Apr 3.
Controlling the transformation of versatile and reactive allenes is a considerable challenge. Herein, we report an efficient silylboronate-mediated cross-coupling reaction of organic fluorides with allenes to construct a series of sterically demanding α-ethynyl-containing all-carbon quaternary centers (ACQCs), using catalyst-free silyl-radical-relay reactions to selectively functionalize highly inert C-F bonds in organic fluorides. The key to the success of this transformation lies in the radical rearrangement of an -generated allenyl radical to form a bulky tertiary propargyl radical; however, the transformation does not show efficiency when using the propargyl isomer directly. This unique reaction enables the cross-coupling of a tertiary carbon radical center with a C(sp)-F bond or a benzylic C(sp)-F bond. α-Ethynyl-containing ACQCs with (hetero)aromatic substituents and benzyl were efficiently synthesized in a single step using electronically and sterically diverse organic fluorides and allenes. The practical utility of this protocol is showcased by the late-stage functionalization of bioactive molecules and the modification of a liquid crystalline material.
控制多功能且具反应性的联烯的转化是一项颇具挑战的任务。在此,我们报道了一种高效的硅硼酸酯介导的有机氟化物与联烯的交叉偶联反应,用于构建一系列空间位阻较大的含α-乙炔基的全碳季碳中心(ACQCs),该反应利用无催化剂的硅自由基接力反应选择性地官能化有机氟化物中高度惰性的C-F键。这种转化成功的关键在于生成的烯丙基自由基进行自由基重排以形成庞大的叔炔丙基自由基;然而,直接使用炔丙基异构体时该转化并无效率。这种独特的反应能够实现叔碳自由基中心与C(sp)-F键或苄基C(sp)-F键的交叉偶联。使用电子和空间结构多样的有机氟化物和联烯,一步法高效合成了带有(杂)芳族取代基和苄基的含α-乙炔基的ACQCs。生物活性分子的后期官能化以及液晶材料的改性展示了该方法的实用性。