Wang Zi-Xuan, Livingstone Keith, Hümpel Carla, Daniliuc Constantin G, Mück-Lichtenfeld Christian, Gilmour Ryan
Institute for Organic Chemistry, Westfälische Wilhelms-Universität (WWU) Münster, Münster, Germany.
Cells in Motion (CiM) Interfaculty Center, Westfälische Wilhelms-Universität (WWU) Münster, Münster, Germany.
Nat Chem. 2023 Nov;15(11):1515-1522. doi: 10.1038/s41557-023-01344-5. Epub 2023 Oct 16.
Fluorinated small molecules are prevalent across the functional small-molecule spectrum, but the scarcity of naturally occurring sources creates an opportunity for creative endeavour in developing routes to access these important materials. Iodine(I)/iodine(III) catalysis has proven to be particularly well-suited to this task, enabling abundant alkene substrates to be readily intercepted by in situ-generated λ-iodanes and processed to high-value (di)fluorinated products. These organocatalysis paradigms often emulate metal-based processes by engaging the π bond and, in the case of styrenes, facilitating fluorinative phenonium-ion rearrangements to generate difluoromethylene units. Here we demonstrate that enynes are competent proxies for styrenes, thereby mitigating the recurrent need for aryl substituents, and enabling highly versatile homopropargylic difluorides to be generated in an operationally simple manner. The scope of the method is disclosed, together with application in target synthesis (>30 examples, up to >90% yield).
含氟小分子在功能性小分子领域中普遍存在,但天然来源的稀缺为开发获取这些重要材料的途径提供了创新机遇。碘(I)/碘(III)催化已被证明特别适合这项任务,能使大量烯烃底物容易地被原位生成的λ-碘鎓盐捕获,并转化为高价值的(二)氟化产物。这些有机催化模式通常通过与π键作用来模拟金属基过程,对于苯乙烯而言,可促进氟化苯鎓离子重排以生成二氟亚甲基单元。在此,我们证明烯炔是苯乙烯的有效替代物,从而减少了对芳基取代基的反复需求,并能够以操作简单的方式生成高度通用的高炔丙基二氟化物。本文还公开了该方法的适用范围以及在目标合成中的应用(>30个实例,产率高达>90%)。