Wang Muyuan, Rowshanpour Rozhin, Guan Liangyu, Ruskin Jonah, Nguyen Phuong Minh, Wang Yuang, Zhang Qinze Arthur, Liu Ran, Ling Bill, Woltornist Ryan, Stephens Alexander M, Prasad Aarush, Dudding Travis, Lectka Thomas, Pitts Cody Ross
Department of Chemistry, Johns Hopkins University, 3400 North Charles Street, Baltimore, Maryland 21218, United States.
Department of Chemistry, Brock University, 1812 Sir Isaac Brock Way St. Catharines, Ontario L2S 3A1, Canada.
J Am Chem Soc. 2023 Oct 18;145(41):22442-22455. doi: 10.1021/jacs.3c06477. Epub 2023 Oct 4.
In 2015, we reported a photochemical method for directed C-C bond cleavage/radical fluorination of relatively unstrained cyclic acetals using Selectfluor and catalytic 9-fluorenone. Herein, we provide a detailed mechanistic study of this reaction, during which it was discovered that the key electron transfer step proceeds through substrate oxidation from a Selectfluor-derived -centered radical intermediate (rather than through initially suspected photoinduced electron transfer). This finding led to proof of concept for two new methodologies, demonstrating that unstrained C-C bond fluorination can also be achieved under chemical and electrochemical conditions. Moreover, as C-C and C-H bond fluorination reactions are both theoretically possible on 2-aryl-cycloalkanone acetals and would involve the same reactive intermediate, we studied the competition between single-electron transfer (SET) and apparent hydrogen-atom transfer (HAT) pathways in acetal fluorination reactions using density functional theory. Finally, these analyses were applied more broadly to other classes of C-H and C-C bond fluorination reactions developed over the past decade, addressing the feasibility of SET processes masquerading as HAT in C-H fluorination literature.
2015年,我们报道了一种光化学方法,该方法使用Selectfluor和催化量的9-芴酮对相对无张力的环状缩醛进行定向C-C键裂解/自由基氟化反应。在此,我们对该反应进行了详细的机理研究,在此过程中发现关键的电子转移步骤是通过Selectfluor衍生的中心自由基中间体对底物进行氧化而进行的(而不是通过最初怀疑的光诱导电子转移)。这一发现为两种新方法提供了概念验证,表明在化学和电化学条件下也可以实现无张力的C-C键氟化反应。此外,由于在2-芳基环烷酮缩醛上C-C键和C-H键的氟化反应在理论上都是可行的,并且会涉及相同的反应中间体,因此我们使用密度泛函理论研究了缩醛氟化反应中单电子转移(SET)和表观氢原子转移(HAT)途径之间的竞争。最后,这些分析被更广泛地应用于过去十年中开发的其他类型的C-H键和C-C键氟化反应,探讨了在C-H氟化文献中SET过程伪装成HAT的可行性。