Redfern Louis R, Farha Omar K
International Institute of Nanotechnology , Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , Illinois 60208 , USA . Email:
Chem Sci. 2019 Oct 17;10(46):10666-10679. doi: 10.1039/c9sc04249k. eCollection 2019 Dec 14.
As the field of metal-organic frameworks (MOFs) continues to grow, the physical stability and mechanical properties of these porous materials has become a topic of great interest. While strategies for synthesizing MOFs with desirable chemical functionalities or pore sizes have been established over the past twenty years, design principles to modulate the response of MOFs to mechanical stress are still underdeveloped. The inherent porosity of these frameworks results in many interesting and sometimes unexpected phenomena upon exposure to elevated pressures and other physical stimuli. Beyond its fundamental importance, an understanding of mechanical properties ( bulk modulus, shear modulus, Young's modulus, linear compressibility, and Poisson's ratio) plays an essential role in the post-synthetic processing of MOFs, which has implications in the successful transition of these materials from academic interest to industrial relevance. This perspective provides a concise overview of the efforts to understand the mechanical properties of MOFs through experimental and computational methods. Additionally, current limitations and possible future directions for the field are also discussed briefly.
随着金属有机框架材料(MOFs)领域的不断发展,这些多孔材料的物理稳定性和机械性能已成为备受关注的话题。在过去二十年里,合成具有理想化学功能或孔径的MOFs的策略已经确立,但调节MOFs对机械应力响应的设计原则仍未充分发展。这些框架材料固有的孔隙率在暴露于高压和其他物理刺激时会导致许多有趣且有时意想不到的现象。除了其根本重要性之外,了解机械性能(体积模量、剪切模量、杨氏模量、线性压缩率和泊松比)在MOFs的后合成加工中起着至关重要的作用,这对这些材料从学术兴趣成功转向工业应用具有重要意义。本文简要概述了通过实验和计算方法来理解MOFs机械性能的相关研究工作。此外,还简要讨论了该领域当前的局限性和未来可能的发展方向。