Liu Huan, Tian Luyao, Zhang Zhentao, Wang Ligang, Li Jialu, Liang Xiao, Zhuang Jiahao, Yin Hang, Yang Da, Zhao Guofeng, Su Fabing, Wang Dingsheng, Li Yadong
Department of Chemistry, Tsinghua University, Beijing 100084, P. R. China.
College of Chemistry and Chemical Engineering, China University of Petroleum, Qingdao 266580, P. R. China.
J Am Chem Soc. 2024 Jul 24;146(29):20518-20529. doi: 10.1021/jacs.4c07197. Epub 2024 Jul 12.
Despite the extensive development of non-noble metals for the -alkylation of amines with alcohols, the exploitation of catalysts with high selectivity, activity, and stability still faces challenges. The controllable modification of single-atom sites through asymmetric coordination with a second heteroatom offers new opportunities for enhancing the intrinsic activity of transition metal single-atom catalysts. Here, we prepared the asymmetric N/P hybrid coordination of single-atom Co-NP by absorbing the Co-P complex on ZIF-8 using a concise impregnation-pyrolysis process. The catalyst exhibits ultrahigh activity and selectivity in the -alkylation of aniline and benzyl alcohol, achieving a turnover number (TON) value of 3480 and a turnover frequency (TOF) value of 174. The TON value is 1 order of magnitude higher than the reported catalysts and even 37-fold higher than that of the homogeneous catalyst CoCl(PPh). Furthermore, the catalyst maintains its high activity and selectivity even after 6 cycles of usage. Controlling experiments and isotope labeling experiments confirm that in the asymmetric Co-NP system, the -alkylation of aniline with benzyl alcohol proceeds via a transfer hydrogenation mechanism involving the monohydride route. Theoretical calculations prove that the superior activity of asymmetric Co-NP is attributed to the higher d-band energy level of Co sites, which leads to a more stable four-membered ring transition state and a lower reaction energy barrier compared to symmetrical Co-N.
尽管在用于胺与醇的-烷基化反应的非贵金属方面已取得了广泛进展,但开发具有高选择性、活性和稳定性的催化剂仍面临挑战。通过与第二种杂原子进行不对称配位来可控修饰单原子位点,为提高过渡金属单原子催化剂的本征活性提供了新机遇。在此,我们通过一个简洁的浸渍-热解过程,将Co-P配合物吸附在ZIF-8上,制备了单原子Co-NP的不对称N/P杂化配位结构。该催化剂在苯胺与苄醇的-烷基化反应中表现出超高活性和选择性,周转数(TON)值达到3480,周转频率(TOF)值为174。TON值比已报道的催化剂高1个数量级,甚至比均相催化剂CoCl(PPh)高37倍。此外,该催化剂即使在使用6个循环后仍保持其高活性和选择性。对照实验和同位素标记实验证实,在不对称Co-NP体系中,苯胺与苄醇的-烷基化反应通过涉及单氢化物途径的转移氢化机理进行。理论计算证明,不对称Co-NP的优异活性归因于Co位点较高的d带能级,与对称Co-N相比,这导致了更稳定的四元环过渡态和更低的反应能垒。