Hobday Claire L, Marshall Ross J, Murphie Colin F, Sotelo Jorge, Richards Tom, Allan David R, Düren Tina, Coudert François-Xavier, Forgan Ross S, Morrison Carole A, Moggach Stephen A, Bennett Thomas D
EaStCHEM School of Chemistry and Centre for Science at Extreme Conditions, University of Edinburgh, David Brewster Road, Joseph Black Building, Edinburgh, EH9 3FJ, UK.
WestCHEM, School of Chemistry, The University of Glasgow, University Avenue, Glasgow, G12 8QQ, UK.
Angew Chem Int Ed Engl. 2016 Feb 12;55(7):2401-5. doi: 10.1002/anie.201509352. Epub 2016 Jan 21.
Whilst many metal-organic frameworks possess the chemical stability needed to be used as functional materials, they often lack the physical strength required for industrial applications. Herein, we have investigated the mechanical properties of two UiO-topology Zr-MOFs, the planar UiO-67 ([Zr6O4(OH)4 (bpdc)6], bpdc: 4,4'-biphenyl dicarboxylate) and UiO-abdc ([Zr6O4(OH)4 (abdc)6], abdc: 4,4'-azobenzene dicarboxylate) by single-crystal nanoindentation, high-pressure X-ray diffraction, density functional theory calculations, and first-principles molecular dynamics. On increasing pressure, both UiO-67 and UiO-abdc were found to be incompressible when filled with methanol molecules within a diamond anvil cell. Stabilization in both cases is attributed to dynamical linker disorder. The diazo-linker of UiO-abdc possesses local site disorder, which, in conjunction with its longer nature, also decreases the capacity of the framework to compress and stabilizes it against direct compression, compared to UiO-67, characterized by a large elastic modulus. The use of non-linear linkers in the synthesis of UiO-MOFs therefore creates MOFs that have more rigid mechanical properties over a larger pressure range.
虽然许多金属有机框架具有用作功能材料所需的化学稳定性,但它们往往缺乏工业应用所需的物理强度。在此,我们通过单晶纳米压痕、高压X射线衍射、密度泛函理论计算和第一性原理分子动力学研究了两种UiO拓扑结构的Zr-MOFs的力学性能,即平面UiO-67([Zr6O4(OH)4 (bpdc)6],bpdc:4,4'-联苯二甲酸酯)和UiO-abdc([Zr6O4(OH)4 (abdc)6],abdc:4,4'-偶氮苯二甲酸酯)。在增加压力时,发现当在金刚石对顶砧池中填充甲醇分子时,UiO-67和UiO-abdc都是不可压缩的。两种情况下的稳定性都归因于动态连接体无序。UiO-abdc的重氮连接体具有局部位点无序,与UiO-67相比,其较长的性质也降低了框架的压缩能力并使其在直接压缩下更稳定,UiO-67具有较大的弹性模量。因此,在UiO-MOFs的合成中使用非线性连接体可创建在更大压力范围内具有更刚性力学性能的MOFs。