Westfälische Wilhelms-Universität Münster, Organisch-Chemisches Institut, Corrensstraße 36, 48149 Münster, Germany.
Department of Chemistry and Biochemistry, University of California, Los Angeles, California 90095-1569, United States.
J Am Chem Soc. 2022 Aug 31;144(34):15662-15671. doi: 10.1021/jacs.2c05687. Epub 2022 Aug 19.
Cycloaddition reactions─epitomized by the Diels-Alder reaction─offer an arguably unmatched springboard for achieving chemical complexity, often with excellent selectivity, in a modular single step. We report the synthesis of aza-acenaphthenes in a single step by an unprecedented formal -(3 + 2) cycloaddition of simple quinolines with alkynes. A commercially available iridium complex exerts a dual role of photosensitizer and photoredox catalyst, fostering a cyclization/rearomatization cascade. The initial energy-transfer phase leads to the acenaphthene skeleton, while the ensuing redox shuttling step leads to aromatization. We applied this technology to 8-substituted quinolines and phenanthrolines, which smoothly reacted with both terminal and internal alkynes with excellent levels of regio- and diastereoselectivity. Density functional theory calculations revealed the intertwined EnT/SET nature of the process and offered guiding design principles for the synthesis of new aza-acenaphthenes.
环加成反应——以 Diels-Alder 反应为代表——为在单一模块步骤中实现化学复杂性提供了一个可说是无与伦比的跳板,通常具有优异的选择性。我们报告了通过前所未有的简单喹啉与炔烃的形式 - (3 + 2) 环加成反应,在一步中合成氮杂吖啶。一种商业上可获得的铱配合物发挥了光致敏剂和光氧化还原催化剂的双重作用,促进了环化/再芳构化级联反应。初始的能量转移阶段导致了吖啶骨架的形成,而随后的氧化还原穿梭步骤导致了芳构化。我们将这项技术应用于 8 位取代的喹啉和菲咯啉,它们可以与末端和内部炔烃顺利反应,具有优异的区域和立体选择性。密度泛函理论计算揭示了该过程的交织 EnT/SET 性质,并为合成新的氮杂吖啶提供了指导设计原则。