Lal Garima, Derakhshandeh Maziar, Akhtar Farid, Spasyuk Denis M, Lin Jian-Bin, Trifkovic Milana, Shimizu George K H
Department of Chemistry , University of Calgary , Calgary , Alberta T2N1N4 , Canada.
Department of Chemical and Petroleum Engineering , University of Calgary , Calgary , Alberta T2N1N4 , Canada.
J Am Chem Soc. 2019 Jan 16;141(2):1045-1053. doi: 10.1021/jacs.8b11527. Epub 2019 Jan 4.
Overcoming the brittleness of metal-organic frameworks (MOFs) is a challenge for industrial applications. To increase the mechanical strength, MOFs have been blended with polymers to form composites. However, this also brings challenges, such as integration and integrity of MOF in the composite, which can hamper the selectivity of gas separations. In this report, an "all MOF" material with mechanical flexibility has been prepared by covalent cross-linking of metal-organic polyhedra (MOPs). The ubiquitous Cu isophthalate MOP has been decorated with a long alkyl chain having terminal alkene functionalities so that MOPs can be cross-linked via olefin metathesis using Grubbs second generation catalyst. Different degrees of cross-linked MOP materials have been obtained by varying the amount of catalyst in the reaction. Rheology of these structures with varying number of cross-links was performed to assess the cross-link density and its homogeneity throughout the sample. The mechanical properties were further investigated by the nanoindentation method, which showed increasing hardness with higher cross-link density. Thus, this strategy of cross-linking MOPs with covalent flexible units allows us to create MOFs of increasing mechanical strength while retaining the MOP cavities.
克服金属有机框架材料(MOFs)的脆性是其工业应用面临的一项挑战。为了提高机械强度,MOFs已与聚合物混合以形成复合材料。然而,这也带来了一些挑战,例如MOF在复合材料中的整合与完整性,这可能会妨碍气体分离的选择性。在本报告中,通过金属有机多面体(MOPs)的共价交联制备了一种具有机械柔韧性的“全MOF”材料。常见的间苯二甲酸铜MOP已用具有末端烯烃官能团的长烷基链进行修饰,以便MOPs能够使用第二代格拉布催化剂通过烯烃复分解反应进行交联。通过改变反应中催化剂的用量获得了不同程度交联的MOP材料。对这些具有不同交联数的结构进行流变学测试,以评估交联密度及其在整个样品中的均匀性。通过纳米压痕法进一步研究了机械性能,结果表明随着交联密度的增加硬度也增加。因此,这种用共价柔性单元交联MOPs的策略使我们能够在保留MOP空腔的同时创建机械强度不断提高的MOFs。