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Theoretical study of conformational disorder and selective adsorption of small organic molecules in the flexible metal-organic framework material MIL-53-Fe

机译:柔性金属有机骨架材料MIL-53-Fe中构象障碍和有机小分子选择性吸附的理论研究

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摘要

Many of the potential applications for metal-organic framework (MOF) materials require molecular level understanding of their adsorption of small organic molecules, which are not readily accessible from experiment. Through high-level van der Waals corrected, hybrid density functional theory calculations, we elucidate the adsorption configurations of several, representative small organic guest molecules in an archetypal flexible MOF material, MIL-53-Fe. The predicted relative energies between low-energy adsorption configurations of 1,4-benzoquinone in MIL-53-Fe are in very good agreement with the thermal transition temperatures observed experimentally and suggest that thermodynamic factors govern the precise arrangements and loading of guests in the MOF host. Experimentally observed conformational disorder of small organic molecules in MIL-53-Fe is explained by predicted multiple low-energy adsorption configurations that are comparable with the thermal energy of the guests, kT. Finally, we show that the previously observed selective adsorption of pyridine and 2,6-lutidine molecules in water by MIL-53-Fe, can be rationalised through a careful analysis of the host-guest and guest-guest interactions and is controlled by thermodynamic factors.
机译:金属有机骨架(MOF)材料的许多潜在应用都需要从分子水平了解它们对有机小分子的吸附,而这些有机碳从实验中很难获得。通过高级范德华校正,混合密度泛函理论计算,我们阐明了原型柔性MOF材料MIL-53-Fe中几种代表性有机小客体分子的吸附构型。在MIL-53-Fe中1,4-苯醌的低能吸附构型之间的预测相对能量与实验观察到的热转变温度非常吻合,表明热力学因素决定了MOF中客体的精确排列和负载主办。实验观察到的MIL-53-Fe中有机小分子的构象紊乱可通过预测的多种低能吸附构型来解释,这些构型可与客体的热能kT相媲美。最后,我们表明,先前观察到的MIL-53-Fe对吡啶和2,6-二甲基吡啶分子在水中的选择性吸附,可以通过对主客体和客体间相互作用的仔细分析来合理化,并受热力学控制因素。

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