Yu Xiangzhu, Miao Meng, Huo Shuxiao, Tang Xinyue, Ni Ling, Liu Shaowei, Wang Lianyue
College of Chemistry and Chemical Engineering, Liaoning Normal University, Dalian 116029, China.
ACS Appl Mater Interfaces. 2024 Apr 3;16(13):16363-16372. doi: 10.1021/acsami.4c01621. Epub 2024 Mar 19.
The cascade synthesis of pyrroles from nitroarenes is an attractive alternative strategy. However, metal catalysts and relatively high temperatures cover the existing reported catalytic systems for this strategy. The development of nonmetallic heterogeneous catalytic systems for the one-pot synthesis of pyrrole from nitroarenes under mild conditions is both worthwhile and challenging. Herein, we describe an exceptionally efficient method for the synthesis of -substituted pyrroles by the reductive coupling of nitroarenes and diketones over heterogeneous metal-free catalysts under mild conditions. Nonmetallic NC-X catalysts with high activity were prepared from the pyrolysis of well-defined ligands via simple sacrificing hard template methods. Hydrazine hydrate, formic acid, and molecular hydrogen can all be used as reducing agents in the hydrogenation/Paal-Knorr reaction sequence to efficiently synthesize various -substituted pyrroles, including drugs and bioactive molecules. The catalytic system was featured with good tolerance to sensitive functional groups and no side reactions such as dehalogenation and aromatics hydrogenation. Hammett correlation studies have shown that the electron-donating substituents are beneficial for the one-pot synthesis of -substituted pyrroles. The results established that the outstanding performance of the catalyst is mainly attributed to the contribution of graphitic N in the catalyst as well as the promotion effect of the mesoporous structure on the reaction.
由硝基芳烃级联合成吡咯是一种有吸引力的替代策略。然而,金属催化剂和相对较高的温度涵盖了该策略现有的报道催化体系。开发用于在温和条件下由硝基芳烃一锅合成吡咯的非金属多相催化体系既具有价值又具有挑战性。在此,我们描述了一种在温和条件下通过硝基芳烃与二酮在无金属多相催化剂上的还原偶联合成α-取代吡咯的异常高效的方法。通过简单的牺牲硬模板法对明确的配体进行热解制备了具有高活性的非金属NC-X催化剂。水合肼、甲酸和分子氢都可以在氢化/帕尔-克诺尔反应序列中用作还原剂,以高效合成各种α-取代吡咯,包括药物和生物活性分子。该催化体系对敏感官能团具有良好的耐受性,且不存在脱卤和芳烃氢化等副反应。哈米特相关研究表明,给电子取代基有利于α-取代吡咯的一锅合成。结果表明,催化剂的优异性能主要归因于催化剂中石墨氮的贡献以及介孔结构对反应的促进作用。