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Tailoring porosity and rotational dynamics in a series of octacarboxylate metal-organic frameworks

机译:在一系列八羧酸金属-有机骨架中调整孔隙率和旋转动力学

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摘要

Modulation and precise control of porosity of metal-organic frameworks (MOFs) is of critical importance to their materials function. Here we report modulation of porosity for a series of isoreticular octacarboxylate MOFs, denoted MFM-180 to MFM-185, via a strategy of selective elongation of metal-organic cages. Owing to the high ligand connectivity, these MOFs do not show interpenetration, and are robust structures that have permanent porosity. Interestingly, activated MFM-185a shows a high Brunauer–Emmett–Teller (BET) surface area of 4,734 m2 g−1 for an octacarboxylate MOF. These MOFs show remarkable CH4 and CO2 adsorption properties, notably with simultaneously high gravimetric and volumetric deliverable CH4 capacities of 0.24 g g−1 and 163 vol/vol (298 K, 5–65 bar) recorded for MFM-185a due to selective elongation of tubular cages. The dynamics of molecular rotors in deuterated MFM-180a-d16 and MFM-181a-d16 were investigated by variable-temperature 2H solid-state NMR spectroscopy to reveal the reorientation mechanisms within these materials. Analysis of the flipping modes of the mobile phenyl groups, their rotational rates, and transition temperatures paves the way to controlling and understanding the role of molecular rotors through design of organic linkers within porous MOF materials.
机译:金属有机骨架(MOF)的孔隙率的调制和精确控制对其材料功能至关重要。在这里,我们通过金属有机笼的选择性拉伸策略,报告了一系列异网状八羧酸MOF(表示为MFM-180至MFM-185)的孔隙度调节。由于高的配体连通性,这些MOF不会互穿,而是具有永久孔隙的坚固结构。有趣的是,活化的MFM-185a对于八羧酸MOF表现出高的Brunauer-Emmett-Teller(BET)表面积,为4,734 m 2 g -1 。这些MOF表现出卓越的CH4和CO2吸附特性,尤其是同时记录的MFM-0.2的重力和体积可传递CH4容量为0.24 gg -1 和163 vol / vol(298 K,5–65 bar)。 185a由于管状笼的选择性伸长。通过变温 2 固态NMR光谱研究了氘代MFM-180a-d16和MFM-181a-d16中分子转子的动力学,揭示了这些材料中的重新取向机理。通过设计多孔MOF材料中的有机连接基,对可移动苯基的翻转模式,其旋转速率和转变温度的分析为控制和理解分子转子的作用铺平了道路。

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