Organisch-Chemisches Institut (OCI), Heidelberg University, Im Neuenheimer Feld 270, 69120, Heidelberg, Germany.
Center for Catalytic Hydrocarbon Functionalizations, Institute for Basic Science (IBS), Daejeon, 34141 (Republic of, Korea.
Chemistry. 2022 Oct 4;28(55):e202201816. doi: 10.1002/chem.202201816. Epub 2022 Aug 1.
New N-heterocyclic compounds for organic functional materials and their efficient syntheses are highly demanded. A surprising entropy-induced selectivity switch in the gold-catalyzed intramolecular hydroarylation of 2-ethynyl N-aryl indoles was found and its exploitation led to straightforward syntheses of indolo[1,2-a]quinolines. Experimental and computational mechanistic investigations gave insight into this uncommon selectivity phenomenon and into the special reactivity of the indolo[1,2-a]quinolines. The high functional group tolerance of this methodology enabled access to a diverse scope with high yields. In addition, bidirectional approaches, post-functionalization reactions, and π-extension of the core structure were feasible. An in-depth study of the photophysical properties explored the structure-effect relationship for different derivatives and revealed a high potential of these compounds for future applications as functional materials.
新型 N-杂环化合物在有机功能材料中具有重要的应用价值,因此对其高效合成方法的研究备受关注。本研究发现金催化的 2-炔基 N-芳基吲哚分子内环氢芳基化反应中存在一种令人惊讶的熵诱导选择性开关,该开关的发现可用于吲哚并[1,2-a]喹啉的直接合成。实验和计算的机理研究为这一不常见的选择性现象以及吲哚并[1,2-a]喹啉的特殊反应性提供了深入的见解。该方法具有高的官能团容忍度,可实现广泛的底物范围,并获得较高的产率。此外,还可通过双向方法、后官能团化反应以及核心结构的π-扩展来进一步拓展其应用。对光物理性质的深入研究探讨了不同衍生物的结构-效应关系,揭示了这些化合物在未来作为功能材料应用的巨大潜力。