Cai Bao-Gui, Empel Claire, Yao Wei-Zhong, Koenigs Rene M, Xuan Jun
Anhui Province Key Laboratory of Chemistry for Inorganic/Organic Hybrid Functionalized Materials and Key Laboratory of Functional Inorganic Materials of Anhui Province, College of Chemistry & Chemical Engineering, Anhui University, Hefei, Anhui, 230601, People's Republic of China.
Institute of Organic Chemistry, RWTH Aachen University, D-52074, Aachen, Germany.
Angew Chem Int Ed Engl. 2023 Nov 27;62(48):e202312031. doi: 10.1002/anie.202312031. Epub 2023 Oct 20.
The azoxy functional group is an important structural motif and represents the formally oxidized counterpart of the azo group. Azoxy compounds find numerous applications ranging from pharmaceuticals to functional materials, yet their synthesis remains underdeveloped with a main focus on the formation symmetric azoxy compounds. To overcome challenges in the synthesis of such unsymmetric azoxy compounds, we designed a process employing readily accessible nitroso compounds and iminoiodinanes. This method builds on the use of visible light irradiation to generate a triplet nitrene from iminoiodinanes, which is trapped by nitroso arenes to give access to sulfonyl-protected azoxy compounds with a good substrate scope and functional group tolerance. We further describe two applications of these sulfonyl-protected azoxy compounds as radical precursors in synthesis, where the whole azoxy group can be transferred and employed in C(sp )-H functionalization of ethers or 1,2-difunctionalization of vinyl ethers. All of the reactions occurred at room temperature under visible light irradiation without the addition of any photoredox catalysts and additives. Control experiments, mechanism investigations, and DFT studies well explained the observed reactivity.
氧化偶氮官能团是一种重要的结构基元,代表偶氮基团的形式上氧化的对应物。氧化偶氮化合物有许多应用,从药物到功能材料,但它们的合成仍然不发达,主要集中在对称氧化偶氮化合物的形成上。为了克服合成此类不对称氧化偶氮化合物的挑战,我们设计了一种使用易于获得的亚硝基化合物和亚胺基碘烷的方法。该方法基于利用可见光照射从亚胺基碘烷生成三重态氮烯,然后被亚硝基芳烃捕获,从而得到具有良好底物范围和官能团耐受性的磺酰基保护的氧化偶氮化合物。我们进一步描述了这些磺酰基保护的氧化偶氮化合物作为合成中的自由基前体的两种应用,其中整个氧化偶氮基团可以转移并用于醚的C(sp³)-H官能化或乙烯基醚的1,2-双官能化。所有反应均在室温下可见光照射下进行,无需添加任何光氧化还原催化剂和添加剂。对照实验、机理研究和密度泛函理论研究很好地解释了观察到的反应活性。