Wang Hao, Warren Mark, Jagiello Jacek, Jensen Stephanie, Ghose Sanjit K, Tan Kui, Yu Liang, Emge Thomas J, Thonhauser Timo, Li Jing
Hoffmann Institute of Advanced Materials, Shenzhen Polytechnic, 7098 Liuxian Boulevard., Shenzhen, Guangdong 518055, China.
Department of Chemistry and Chemical Biology, Rutgers University, 123 Bevier Road, Piscataway, New Jersey 08854, United States.
J Am Chem Soc. 2020 Nov 25;142(47):20088-20097. doi: 10.1021/jacs.0c09475. Epub 2020 Nov 10.
Flexible metal-organic frameworks (MOFs) hold great promise as smart materials for specific applications such as gas separation. These materials undergo interesting structural changes in response to guest molecules, which is often associated with unique adsorption behavior not possible for rigid MOFs. Understanding the dynamic behavior of flexible MOFs is crucial yet challenging as it involves weak host-guest interactions and subtle structural transformation not only at the atomic/molecular level but also in a nonsteady state. We report here an in-depth study on the adsorbate- and temperature-dependent adsorption in a flexible MOF by crystallizing atomic gases into its pores. Mn(ina) shows an interesting temperature-dependent response toward noble gases. Its nonmonotonic, temperature-dependent adsorption profile results in an uptake maximum at a temperature threshold, a phenomenon that is unusual. Full characterization of Xe-loaded MOF structures is performed by single-crystal and synchrotron X-ray diffraction, IR spectroscopy, and molecular modeling. The X-ray diffraction analysis offers a detailed explanation into the dynamic structural transformation and provides a convincing rationalization of the unique adsorption behavior at the molecular scale. The guest and temperature dependence of the structural breathing gives rise to an intriguing reverse of Xe/Kr adsorption selectivity as a function of temperature. The presented work may provide further understanding of the adsorption behavior of noble gases in flexible MOF structures.
柔性金属有机框架材料(MOFs)作为用于气体分离等特定应用的智能材料具有巨大潜力。这些材料会因客体分子而发生有趣的结构变化,这通常与刚性MOFs所不具备的独特吸附行为相关。理解柔性MOFs的动态行为至关重要但也具有挑战性,因为这不仅涉及原子/分子水平上的弱主客体相互作用和微妙的结构转变,还涉及非稳态情况。我们在此报告通过将原子气体结晶到其孔中,对一种柔性MOF中吸附质和温度依赖性吸附进行的深入研究。Mn(ina)对稀有气体表现出有趣的温度依赖性响应。其非单调的、与温度相关的吸附曲线在一个温度阈值处导致最大吸附量,这一现象并不寻常。通过单晶和同步加速器X射线衍射、红外光谱和分子建模对负载Xe的MOF结构进行了全面表征。X射线衍射分析对动态结构转变给出了详细解释,并在分子尺度上为独特的吸附行为提供了令人信服的合理化解释。结构呼吸的客体和温度依赖性导致了作为温度函数的Xe/Kr吸附选择性的有趣反转。所呈现的工作可能会进一步加深对稀有气体在柔性MOF结构中吸附行为的理解。