Max-Planck-Institut für Kohlenforschung, Mülheim an der Ruhr, Germany.
Nature. 2019 Mar;567(7747):223-228. doi: 10.1038/s41586-019-0982-0. Epub 2019 Mar 13.
Direct C-H functionalization can quickly increase useful structural and functional molecular complexity. Site selectivity can sometimes be achieved through appropriate directing groups or substitution patterns-in the absence of such functionality, most aromatic C-H functionalization reactions provide more than one product isomer for most substrates. Development of a C-H functionalization reaction that proceeds with high positional selectivity and installs a functional group that can serve as a synthetic linchpin for further functionalization would provide access to a large variety of well-defined arene derivatives. Here we report a highly selective aromatic C-H functionalization reaction that does not require a particular directing group or substitution pattern to achieve selectivity, and provides functionalized arenes that can participate in various transformations. We introduce a persistent sulfur-based radical to functionalize complex arenes with high selectivity and obtain thianthrenium salts that are ready to engage in different transformations, via both transition-metal and photoredox catalysis. This transformation differs fundamentally from all previous aromatic C-H functionalization reactions in that it provides direct access to a large number of derivatives of complex small molecules, quickly generating functional diversity with selectivity that is not achievable by other methods.
直接 C-H 功能化可以快速增加有用的结构和功能分子复杂性。通过适当的导向基团或取代模式,可以实现位点选择性——在缺乏这种功能的情况下,大多数芳香族 C-H 功能化反应为大多数底物提供了不止一种产物异构体。开发一种具有高位置选择性的 C-H 功能化反应,并引入可以作为进一步功能化的合成关键的官能团,将为大量定义明确的芳烃衍生物提供途径。在这里,我们报告了一种高度选择性的芳香族 C-H 功能化反应,它不需要特定的导向基团或取代模式来实现选择性,并提供可以参与各种转化的官能化芳烃。我们引入了一种持久的基于硫的自由基,以高选择性地对复杂芳烃进行功能化,并通过过渡金属和光氧化还原催化获得噻蒽翁盐,这些盐可以通过两种方式参与不同的转化。这种转化与所有以前的芳香族 C-H 功能化反应在根本上不同,它可以直接获得大量复杂小分子的衍生物,快速生成具有其他方法无法实现的选择性的功能多样性。