Gharib Maniya, Esrafili Leili, Morsali Ali, Vande Velde Christophe M L, Guo Zhifang, Junk Peter C
Department of Chemistry, Faculty of Sciences, Tarbiat Modares University, 14155-4838 Tehran, Iran.
iPRACS, Faculty of Applied Engineering, University of Antwerp, Groenenborgerlaan 171, 2020 Antwerpen, Belgium.
Inorg Chem. 2022 May 9;61(18):6725-6732. doi: 10.1021/acs.inorgchem.1c03122. Epub 2022 Apr 27.
A new porous metal-organic framework, [Co (oba) (bpdh)]·(DMF) (TMU-63), containing accessible nitrogen-rich diazahexadiene groups was successfully prepared with the solvothermal assembly of 5-bis(4-pyridyl)-3,4-diaza-2,4-hexadiene (4-bpdh), 4,4'-oxybis(benzoic) acid (oba), and Co(II) ions. The combination of Lewis basic functional groups and porosity leads to high performance in CO adsorption and conversion in the cycloaddition reaction of epoxides under solvent-free conditions. To further enhance the catalytic efficiency of TMU-63, we introduced a highly acidic malonamide ligand into the structure solvent-assisted ligand exchange (SALE) as a postsynthesis method. Incorporating different percentages of ,-di(pyridine-4-yl) malonamide linker (4-dpm) into TMU-63 created a new porous structure. Powder X-ray diffraction (PXRD) and NMR spectroscopy confirmed that 4-bpdh was successfully replaced with 4-dpm in the daughter MOF, TMU-63S. The catalytic activity of both MOFs was confirmed by significant amounts of CO cycloaddition of epoxides under solvent-free conditions. The catalytic cycloaddition activities were found to be well-correlated with the Lewis base/Brønsted acid distributions of the materials examined in the TMU-63S series, showing that the concurrent presence of both acid and base sites was desirable for high catalytic activity. Furthermore, the heterogeneous catalysts could easily be separated out from the reaction mixtures and reused four times without loss of catalytic activity and with no structural deterioration.
通过5-双(4-吡啶基)-3,4-二氮杂-2,4-己二烯(4-bpdh)、4,4'-氧代双(苯甲酸)(oba)和Co(II)离子的溶剂热组装,成功制备了一种新型多孔金属有机骨架材料[Co(oba)(bpdh)]·(DMF)(TMU-63),其含有可及的富氮二氮杂己二烯基团。路易斯碱性官能团与孔隙率的结合使得该材料在无溶剂条件下环氧化物的环加成反应中具有高效的CO吸附和转化性能。为了进一步提高TMU-63的催化效率,我们采用溶剂辅助配体交换(SALE)作为后合成方法,将一种高酸性的丙二酰胺配体引入其结构中。将不同百分比的二(吡啶-4-基)丙二酰胺连接体(4-dpm)引入TMU-63中,形成了一种新的多孔结构。粉末X射线衍射(PXRD)和核磁共振光谱证实,在子MOF TMU-63S中,4-bpdh被4-dpm成功取代。在无溶剂条件下,两种MOF对环氧化物的大量CO环加成反应证实了它们的催化活性。发现催化环加成活性与TMU-63S系列中所研究材料的路易斯碱/布朗斯特酸分布具有良好的相关性,表明同时存在酸性和碱性位点对于高催化活性是有利的。此外,非均相催化剂能够很容易地从反应混合物中分离出来,并重复使用四次,而不会损失催化活性,也不会发生结构劣化。