Chandra Debraj, Saini Shikha, Bhattacharya Saswata, Bhaumik Asim, Kamata Keigo, Hara Michikazu
World Research Hub Initiative (WRHI), Institute of Innovative Research, Tokyo Institute of Technology, Nagatsuta-cho 4259, Midori-ku, Yokohama 226-8503, Japan.
Department of Physics, Indian Institute of Technology Delhi, New Delhi 110016, India.
ACS Appl Mater Interfaces. 2020 Nov 25;12(47):52668-52677. doi: 10.1021/acsami.0c15407. Epub 2020 Nov 13.
Active metal catalysts are the key in chemical industry for sustainable production of multitude of chemical resources. Here, we report a new ruthenium (Ru) composite with a synergistically controlled nanostructure and electronic properties as a highly efficient hydrogenation catalyst which comprises stable small Ru nanoparticles (mean particle size, 0.9 nm) in situ generated into a nanoporous N-functionalized carbon with high surface area ( 650 m g) and has strong electron-donating power of Ru sites of nanoparticles. The scalable and highly reusable catalyst, prepared from a self-assembled Ru complex, performs actively with low per metal usage under mild conditions (60-80 °C and 0.5-1.0 MPa H) for selective hydrogenation of various quinolines and pyridines. The role of electron-donating properties of the new Ru nanohybrid for highly efficient catalysis was characterized by both experiments and computational studies. Density functional theory calculations reveal that weak adsorption energies of quinoline at the electron-rich Ru surface prevents poisoning caused by its strong coordination and provides excellent reusability of the catalyst, while low activation barriers for the hydrogenation steps of the N-heterocyclic ring correlate with high catalytic activity. Our catalyst exhibits 5-24-fold higher turnover frequency up to 167 h among the efficient noble metal catalysts reported for selective hydrogenation of quinoline to 1,2,3,4-tetrahydroquinoline.
活性金属催化剂是化学工业中可持续生产多种化学资源的关键。在此,我们报道了一种新型钌(Ru)复合材料,其具有协同控制的纳米结构和电子性质,作为一种高效氢化催化剂,该复合材料包含原位生成的稳定小Ru纳米颗粒(平均粒径0.9 nm),这些纳米颗粒存在于具有高表面积(650 m²/g)的纳米多孔N功能化碳中,且纳米颗粒的Ru位点具有强给电子能力。由自组装Ru配合物制备的这种可扩展且高度可重复使用的催化剂,在温和条件(60 - 80°C和0.5 - 1.0 MPa氢气)下,以低金属用量对各种喹啉和吡啶进行选择性氢化时表现出高活性。通过实验和计算研究对新型Ru纳米杂化物的给电子性质在高效催化中的作用进行了表征。密度泛函理论计算表明,喹啉在富电子Ru表面的弱吸附能可防止因其强配位作用导致的中毒,并使催化剂具有出色的可重复使用性,而N杂环氢化步骤的低活化能垒与高催化活性相关。在已报道的用于将喹啉选择性氢化为1,2,3,4 - 四氢喹啉的高效贵金属催化剂中,我们的催化剂表现出高达167 h⁻¹的周转频率,比其他催化剂高5 - 24倍。