Su Jianke, Ma Xingxing, Ou Zongliang, Song Qiuling
Institute of Next Generation Matter Transformation, College of Material Sciences & Engineering at Huaqiao University, 668 Jimei Boulevard, Xiamen, Fujian 361021, China.
Key Laboratory of Molecule Synthesis and Function Discovery, Fujian Province University, College of Chemistry at Fuzhou University, Fuzhou, Fujian 350108, China.
ACS Cent Sci. 2020 Oct 28;6(10):1819-1826. doi: 10.1021/acscentsci.0c00779. Epub 2020 Aug 31.
Transition-metal- or oxidant-promoted deconstructive functionalizations of noncyclic carbon-nitrogen bonds are well established, usually only leaving one moiety functionalized toward the final product. In contrast, concomitant C- and N-functionalizations via the unstrained C(sp)-N bond under metal- and oxidant-free conditions are very rare, which would favorably confer versatility and product diversity. Disclosed herein is the first difluorocarbene-induced deconstructive functionalizations embodying successive C(sp)-N bond cleavage of cyclic amines and synchronous functionalization of both constituent atoms which would be preserved in the eventual molecular outputs under transition-metal-free and oxidant-free conditions. Correspondent access to deuterated formamides with ample isotopic incorporation was demonstrated by a switch to heavy water which is conceivably useful in pharmaceutical sciences. The current strategy remarkably administers a very convenient, operationally simple and novel method toward molecular diversity from readily available starting materials. Therefore, we project that these findings would be of broad interest to research endeavors encompassing fluorine chemistry, carbene chemistry, C-N bond activation, as well as medicinal chemistry.
过渡金属或氧化剂促进的非环状碳氮键的解构官能团化反应已得到充分证实,通常最终产物中只有一个部分被官能团化。相比之下,在无金属和无氧化剂的条件下,通过未受张力的C(sp)-N键同时进行C-和N-官能团化的情况非常罕见,而这种反应将有利于赋予反应多样性和产物多样性。本文报道了首例二氟卡宾诱导的解构官能团化反应,该反应体现了环状胺的C(sp)-N键的连续断裂以及两个组成原子的同步官能团化,且在无过渡金属和无氧化剂的条件下,这些官能团会保留在最终的分子产物中。通过改用重水,证明了可以相应地获得具有大量同位素掺入的氘代甲酰胺,这在药物科学中可能是有用的。目前的策略显著地提供了一种非常方便、操作简单且新颖的方法,可从易得的起始原料实现分子多样性。因此,我们预计这些发现将对包括氟化学、卡宾化学、C-N键活化以及药物化学在内的研究工作具有广泛的意义。