Shin Sang Rim, Cho Hae Sung, Lee Yongjin, Gim Suji, Jung Yong Min, Kim Hyungjun, Terasaki Osamu, Kang Jeung Ku
Department of Materials Science & Engineering, Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Yeseong-gu, Daejeon 34141, Republic of Korea.
School of Physical Science and Technology, ShanghaiTech University, 393 Middle Huaxia Road, Pudong, Shanghai 201210, China.
J Am Chem Soc. 2021 Dec 15;143(49):20747-20757. doi: 10.1021/jacs.1c08809. Epub 2021 Dec 6.
Herein, we report the adsorbate behavior in individual local pores of MIL-101, which is a metal-organic framework (MOF) with two heterogeneous mesopores and different metal sites, by combining adsorbate isotherms and crystallography profiles. The mapping shows that the substrate-adsorbate interaction affects the initial adsorption and pore condensation steps. The monolayer adsorption gradient changes greatly depending on the framework metal-adsorbate attraction force. Also, broad inflection points are found in adsorption isotherms, and the initial shape depends on the different metals. Besides, the capillary condensation at a pore draws adsorbates from other local pores. This leads to the local negative uptake behavior in individual pore isotherms. At higher pressure, they move to a larger space, whereas in a relatively low-pressure range the attraction force between the MOF framework and guest molecule influences the amount of rearranged guest molecules. Furthermore, the origin of the characteristic adsorption behavior based on the metals constituting the MOFs and the relative strength of substrate-adsorbate and adsorbate-adsorbate interactions are elucidated through the combined study of electron densities in pores, electron paramagnetic resonance spectroscopy spectra, and density functional theory and Monte Carlo simulations to uncover the previously veiled information on adsorption behavior.
在此,我们通过结合吸附等温线和晶体学图谱,报告了MIL-101(一种具有两个异质介孔和不同金属位点的金属有机框架材料,即MOF)中单个局部孔隙内的吸附质行为。图谱显示,底物与吸附质的相互作用会影响初始吸附和孔隙凝聚步骤。单层吸附梯度会根据框架金属与吸附质的吸引力而发生很大变化。此外,在吸附等温线中发现了宽拐点,其初始形状取决于不同的金属。此外,一个孔隙处的毛细管凝聚会从其他局部孔隙吸引吸附质。这导致了单个孔隙等温线中的局部负吸附行为。在较高压力下,它们会移动到更大的空间,而在相对低压范围内,MOF框架与客体分子之间的吸引力会影响重新排列的客体分子数量。此外,通过对孔隙中的电子密度、电子顺磁共振光谱、密度泛函理论和蒙特卡罗模拟进行联合研究,阐明了基于构成MOF的金属以及底物-吸附质和吸附质-吸附质相互作用的相对强度的特征吸附行为的起源,以揭示先前隐藏的吸附行为信息。