Wang Lu, Shi Fuxing, Qi Chaorong, Xu Wenjie, Xiong Wenfang, Kang Bangxiong, Jiang Huanfeng
Key Laboratory of Functional Molecular Engineering of Guangdong Province, School of Chemistry and Chemical Engineering, South China University of Technology Guangzhou 510640 P. R. China
State Key Laboratory of Chemical Resource Engineering, Institute of Computational Chemistry, College of Chemistry, Beijing University of Chemical Technology Beijing 100029 P. R. China.
Chem Sci. 2021 Aug 3;12(35):11821-11830. doi: 10.1039/d1sc03366b. eCollection 2021 Sep 15.
Photocatalytic conversion of carbon dioxide (CO) into value-added chemicals is of great significance from the viewpoint of green chemistry and sustainable development. Here, we report a stereodivergent synthesis of β-iodoenol carbamates through a photocatalytic three-component coupling of ethynylbenziodoxolones, CO and amines. By choosing appropriate photocatalysts, both - and -isomers of β-iodoenol carbamates, which are difficult to prepare using existing methods, can be obtained stereoselectively. This transformation featured mild conditions, excellent functional group compatibility and broad substrate scope. The potential synthetic utility of this protocol was demonstrated by late-stage modification of bioactive molecules and pharmaceuticals as well as by elaborating the products to access a wide range of valuable compounds. More importantly, this strategy could provide a general and practical method for stereodivergent construction of trisubstituted alkenes such as triarylalkenes, which represents a fascinating challenge in the field of organic chemistry research. A series of mechanism investigations revealed that the transformation might proceed through a charge-transfer complex which might be formed through a halogen bond.
从绿色化学和可持续发展的角度来看,将二氧化碳(CO)光催化转化为高附加值化学品具有重要意义。在此,我们报道了通过苯并碘恶唑酮、CO和胺的光催化三组分偶联反应立体发散合成β-碘代烯醇氨基甲酸酯。通过选择合适的光催化剂,可以立体选择性地获得现有方法难以制备的β-碘代烯醇氨基甲酸酯的α-和β-异构体。该转化反应条件温和,官能团兼容性优异,底物范围广泛。通过生物活性分子和药物的后期修饰以及将产物进一步转化以获得各种有价值的化合物,证明了该方法的潜在合成实用性。更重要的是,该策略可为三芳基烯烃等三取代烯烃的立体发散构建提供一种通用且实用的方法,这在有机化学研究领域是一个极具挑战性的课题。一系列机理研究表明,该转化反应可能通过电荷转移复合物进行,该复合物可能通过卤键形成。