Florida State University, Tallahassee, Florida 32306, United States.
J Am Chem Soc. 2015 May 20;137(19):6335-49. doi: 10.1021/jacs.5b02373. Epub 2015 May 6.
Chemoselective interaction of aromatic enynes with Bu3Sn radicals can be harnessed for selective cascade transformations, yielding either Sn-substituted naphthalenes or Sn-indenes. Depending on the substitution at the alkene terminus, the initial regioselective 5-exo-trig cyclizations can be intercepted at the 5-exo stage via either hydrogen atom abstraction or C-S bond scission or allowed to proceed further to the formal 6-endo products via homoallylic ring expansion. Aromatization of the latter occurs via β-C-C bond scission, which is facilitated by 2c,3e through-bond interactions, a new stereoelectronic effect in radical chemistry. The combination of formal 6-endo-trig cyclization with stereoelectronically optimized fragmentation allows the use of alkenes as synthetic equivalents of alkynes and opens a convenient route to α-Sn-substituted naphthalenes, a unique launching platform for the preparation of extended polyaromatics.
芳基烯炔与 Bu3Sn 自由基的化学选择性相互作用可用于选择性级联转化,生成 Sn 取代的萘或 Sn 茚。根据烯烃末端的取代基,初始区域选择性的 5-exo-trig 环化可以通过氢原子提取或 C-S 键断裂在 5-exo 阶段被拦截,或者通过偕丙基环扩张进一步进行到正式的 6-endo 产物。后者的芳构化通过 β-C-C 键断裂发生,这通过 2c,3e 通过键相互作用得到促进,这是自由基化学中的一种新的立体电子效应。正式的 6-endo-trig 环化与立体电子优化的断裂相结合允许使用烯烃作为炔烃的合成等价物,并为 α-Sn 取代的萘的制备开辟了一条方便的途径,这是制备扩展多芳烃的独特起点。