Meekel Emily G, Partridge Phillippa, Paraoan Robert A I, Levinsky Joshua J B, Slater Ben, Hobday Claire L, Goodwin Andrew L
Inorganic Chemistry Laboratory, Department of Chemistry, University of Oxford, Oxford, UK.
Centre for Science at Extreme Conditions and EaStCHEM School of Chemistry, University of Edinburgh, Edinburgh, UK.
Nat Mater. 2024 Sep;23(9):1245-1251. doi: 10.1038/s41563-024-01960-7. Epub 2024 Jul 23.
By virtue of their open network structures and low densities, metal-organic frameworks (MOFs) are soft materials that exhibit elastic instabilities at low applied stresses. The conventional strategy for improving elastic stability is to increase the connectivity of the underlying MOF network, which necessarily increases the material density and reduces the porosity. Here we demonstrate an alternative paradigm, whereby elastic stability is enhanced in a MOF with an aperiodic network topology. We use a combination of variable-pressure single-crystal X-ray diffraction measurements and coarse-grained lattice-dynamical calculations to interrogate the high-pressure behaviour of the topologically aperiodic system TRUMOF-1, which we compare against that of its ordered congener MOF-5. We show that the topology of the former quenches the elastic instability responsible for pressure-induced framework collapse in the latter, much as irregularity in the shapes and sizes of stones acts to prevent cooperative mechanical failure in drystone walls. Our results establish aperiodicity as a counter-intuitive design motif in engineering the mechanical properties of framework structures that is relevant to MOFs and larger-scale architectures alike.
金属有机框架材料(MOFs)因其开放的网络结构和低密度,属于软材料,在低外加应力下会表现出弹性不稳定性。提高弹性稳定性的传统策略是增加基础MOF网络的连接性,这必然会增加材料密度并降低孔隙率。在此,我们展示了一种替代范例,即在具有非周期性网络拓扑结构的MOF中增强弹性稳定性。我们结合可变压力单晶X射线衍射测量和粗粒化晶格动力学计算,来研究拓扑非周期性体系TRUMOF-1的高压行为,并将其与有序同系物MOF-5的高压行为进行比较。我们表明,前者的拓扑结构抑制了导致后者因压力引起框架坍塌的弹性不稳定性,这与石墙中石头形状和尺寸的不规则性可防止协同机械失效的作用方式非常相似。我们的研究结果确立了非周期性作为一种违反直觉的设计主题,可用于设计与MOF及更大尺度结构相关的框架结构的力学性能。