Li Zhijun, Lu Xiaowen, Guo Cong, Ji Siqi, Liu Hongxue, Guo Chunmin, Lu Xue, Wang Chao, Yan Wensheng, Liu Bingyu, Wu Wei, Horton J Hugh, Xin Shixuan, Wang Yu
National Key Laboratory of Continental Shale Oil, College of Chemistry and Chemical Engineering, Northeast Petroleum University, Daqing, PR China.
Jiangsu Collaborative Innovation Centre of Biomedical Functional Materials, School of Chemistry and Materials Science, Nanjing Normal University, Nanjing, PR China.
Nat Commun. 2024 Apr 12;15(1):3195. doi: 10.1038/s41467-024-47402-5.
The solvent-free selective hydrogenation of nitroaromatics to azoxy compounds is highly important, yet challenging. Herein, we report an efficient strategy to construct individually dispersed Co atoms decorated on niobium pentaoxide nanomeshes with unique geometric and electronic properties. The use of this supported Co single atom catalysts in the selective hydrogenation of nitrobenzene to azoxybenzene results in high catalytic activity and selectivity, with 99% selectivity and 99% conversion within 0.5 h. Remarkably, it delivers an exceptionally high turnover frequency of 40377 h, which is amongst similar state-of-the-art catalysts. In addition, it demonstrates remarkable recyclability, reaction scalability, and wide substrate scope. Density functional theory calculations reveal that the catalytic activity and selectivity are significantly promoted by the unique electronic properties and strong electronic metal-support interaction in Co/NbO. The absence of precious metals, toxic solvents, and reagents makes this catalyst more appealing for synthesizing azoxy compounds from nitroaromatics. Our findings suggest the great potential of this strategy to access single atom catalysts with boosted activity and selectivity, thus offering blueprints for the design of nanomaterials for organocatalysis.
将硝基芳烃无溶剂选择性氢化为氧化偶氮化合物非常重要,但具有挑战性。在此,我们报告了一种有效的策略,用于构建负载在五氧化二铌纳米网孔上的单分散钴原子,这些钴原子具有独特的几何和电子性质。将这种负载型钴单原子催化剂用于硝基苯选择性氢化为氧化偶氮苯的反应中,具有高催化活性和选择性,在0.5小时内选择性达99%,转化率达99%。值得注意的是,其周转频率高达40377 h⁻¹,在同类先进催化剂中名列前茅。此外,它还具有出色的可回收性、反应可扩展性和广泛的底物适应性。密度泛函理论计算表明,Co/Nb₂O₅中独特的电子性质和强烈的电子金属-载体相互作用显著促进了催化活性和选择性。该催化剂不含贵金属、有毒溶剂和试剂,这使其在从硝基芳烃合成氧化偶氮化合物方面更具吸引力。我们的研究结果表明,这种策略在制备具有增强活性和选择性的单原子催化剂方面具有巨大潜力,从而为有机催化纳米材料的设计提供了蓝图。