Wang Xin-Yu, Pan Yong-Zhou, Yang Jiarui, Li Wen-Hao, Gan Tao, Pan Ying-Ming, Tang Hai-Tao, Wang Dingsheng
Department of Chemistry, Northeastern University, Shenyang, 110004, China.
State Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources, Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources (Ministry of Education of China), Collaborative Innovation Center for Guangxi Ethnic Medicine, School of Chemistry and Pharmaceutical Sciences, Guangxi Normal University, Guilin, 541004, China.
Angew Chem Int Ed Engl. 2024 Jul 1;63(27):e202404295. doi: 10.1002/anie.202404295. Epub 2024 May 27.
Homogeneous electrocatalysts can indirect oxidate the high overpotential substrates through single-electron transfer on the electrode surface, enabling efficient operation of organic electrosynthesis catalytic cycles. However, the problems of this chemistry still exist such as high dosage, difficult recovery, and low catalytic efficiency. Single-atom catalysts (SACs) exhibit high atom utilization and excellent catalytic activity, hold great promise in addressing the limitations of homogeneous catalysts. In view of this, we have employed Fe-SA@NC as an advanced redox mediator to try to change this situation. Fe-SA@NC was synthesized using an encapsulation-pyrolysis method, and it demonstrated remarkable performance as a redox mediator in a range of reported organic electrosynthesis reactions, and enabling the construction of various C-C/C-X bonds. Moreover, Fe-SA@NC demonstrated a great potential in exploring new synthetic method for organic electrosynthesis. We employed it to develop a new electro-oxidative ring-opening transformation of cyclopropyl amides. In this new reaction system, Fe-SA@NC showed good tolerance to drug molecules with complex structures, as well as enabling flow electrochemical syntheses and gram-scale transformations. This work highlights the great potential of SACs in organic electrosynthesis, thereby opening a new avenue in synthetic chemistry.
均相电催化剂可通过电极表面的单电子转移间接氧化高过电位底物,从而实现有机电合成催化循环的高效运行。然而,这种化学方法仍存在一些问题,如用量大、回收困难和催化效率低等。单原子催化剂(SACs)具有高原子利用率和优异的催化活性,在解决均相催化剂的局限性方面具有巨大潜力。鉴于此,我们采用Fe-SA@NC作为一种先进的氧化还原介质,试图改变这种状况。Fe-SA@NC采用封装-热解方法合成,在一系列已报道的有机电合成反应中作为氧化还原介质表现出卓越性能,并能够构建各种C-C/C-X键。此外,Fe-SA@NC在探索有机电合成新合成方法方面具有巨大潜力。我们用它开发了一种环丙基酰胺的新型电氧化开环转化反应。在这个新的反应体系中,Fe-SA@NC对结构复杂的药物分子表现出良好的耐受性,还能够实现流动电化学合成和克级规模转化。这项工作突出了单原子催化剂在有机电合成中的巨大潜力,从而为合成化学开辟了一条新途径。