CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing 100190, P. R. China.
School of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing 100049, P. R. China.
J Am Chem Soc. 2023 May 24;145(20):11085-11096. doi: 10.1021/jacs.3c00460. Epub 2023 May 10.
Selective aerobic epoxidation of alkenes without any additives is of great industrial importance but still challenging because the competitive side reactions including C═C bond cleavage and isomerization are difficult to avoid. Here, we show fabricating Cu(I) single sites in pristine multivariate metal-organic frameworks (known as CuCo-MOF-74) via partial reduction of Cu(II) to Cu(I) ions during solvothermal reaction. Impressively, CuCo-MOF-74 is characteristic with single Cu(I), Cu(II), and Co(II) sites, and they exhibit the substantially enhanced selectivity of styrene oxide up to 87.6% using air as an oxidant at almost complete conversion of styrene, ∼25.8% selectivity increased over Co-MOF-74, as well as good catalytic stability. Contrast experiments and theoretical calculation indicate that Cu(I) sites contribute to the substantially enhanced selectivity of epoxides catalyzed by Co(II) sites. The adsorption of two O molecules on dual Co(II) and Cu(I) sites is favorable, and the projected density of state of the Co-3d orbital is closer to the Fermi level by modulating with Cu(I) sites for promoting the activation of O compared with dual-site Cu(II) and Co(II) and Co(II) and Co(II), thus contributing to the epoxidation of the C═C bond. When other kinds of alkenes are used as substrates, the excellent selectivity of various epoxides is also achieved over CuCo-MOF-74. We also prove the universality of fabricating Cu(I) sites in other MOF-74 with various divalent metal nodes.
烯烃的选择性有氧环氧化在工业上具有重要意义,但仍然具有挑战性,因为包括 C═C 键断裂和异构化在内的竞争副反应很难避免。在这里,我们通过在溶剂热反应过程中部分还原 Cu(II)为 Cu(I)离子,在原始多元金属有机骨架(称为 CuCo-MOF-74)中制造 Cu(I)单原子。令人印象深刻的是,CuCo-MOF-74 具有独特的单 Cu(I)、Cu(II)和 Co(II)位,它们在空气作为氧化剂的情况下,对苯乙烯的转化率接近完全,选择性高达 87.6%,比 Co-MOF-74 提高了约 25.8%,并且具有良好的催化稳定性。对比实验和理论计算表明,Cu(I)位有助于提高 Co(II)位催化的环氧化物的选择性。双 Co(II)和 Cu(I)位吸附两个 O 分子是有利的,通过与 Cu(I)位调制 Co-3d 轨道的投影态密度更接近费米能级,从而促进 O 的活化,与双位 Co(II)和 Co(II)以及 Co(II)和 Co(II)相比,这有助于 C═C 键的环氧化。当使用其他烯烃作为底物时,CuCo-MOF-74 也能实现各种环氧化物的优异选择性。我们还证明了在其他具有各种二价金属节点的 MOF-74 中制造 Cu(I)位的普遍性。