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Trapping gases in metal-organic frameworks with a selective surface molecular barrier layer

机译:带有选择性表面分子阻挡层的金属有机框架中的气体捕集

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摘要

The main challenge for gas storage and separation in nanoporous materials is that many molecules of interest adsorb too weakly to be effectively retained. Instead of synthetically modifying the internal surface structure of the entire bulk—as is typically done to enhance adsorption—here we show that post exposure of a prototypical porous metal-organic framework to ethylenediamine can effectively retain a variety of weakly adsorbing molecules (for example, CO, CO2, SO2, C2H4, NO) inside the materials by forming a monolayer-thick cap at the external surface of microcrystals. Furthermore, this capping mechanism, based on hydrogen bonding as explained by ab initio modelling, opens the door for potential selectivity. For example, water molecules are shown to disrupt the hydrogen-bonded amine network and diffuse through the cap without hindrance and fully displace/release the retained small molecules out of the metal-organic framework at room temperature. These findings may provide alternative strategies for gas storage, delivery and separation.
机译:在纳米多孔材料中进行气体存储和分离的主要挑战是,许多目标分子的吸附太弱而无法有效保留。代替合成修饰整个主体的内部表面结构(通常是为了增强吸附作用),我们在此表明​​,典型的多孔金属-有机骨架暴露于乙二胺后可以有效保留各种弱吸附分子(例如,通过在微晶的外表面形成一个单层厚的帽,在材料内部形成CO,CO2,SO2,C2H4,NO)。此外,这种封端机理基于从头算建模所解释的氢键,为潜在的选择性打开了大门。例如,显示出水分子可破坏氢键合的胺网络并在无阻碍的情况下通过帽扩散,并在室温下将保留的小分子从金属有机骨架中完全置换/释放出来。这些发现可能为气体存储,输送和分离提供替代策略。

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