A cubic coordination framework constructed from benzobistriazolate ligands and zinc ions having selective gas sorption properties

结晶度 粉末衍射 微型多孔材料 分子 吸附 二甲基乙酰胺 单晶 结晶学 材料科学 溶剂热合成 元素分析 化学 吸附 无机化学 金属有机骨架 溶剂 物理化学 有机化学
作者
Shyam Biswas,Maciej Grzywa,Hari Pada Nayek,Stefanie Dehnen,Irena Senkovska,Stefan Kaskel,Dirk Volkmer
出处
期刊:Dalton Transactions [Royal Society of Chemistry]
卷期号: (33): 6487-6487 被引量:132
标识
DOI:10.1039/b904280f
摘要

Two novel metal coordination polymers, [Zn5Cl4(BBTA)3].3 DMF (1), and [ZnCl(BBTA)(0.5)(DMA)] (2) {H2-BBTA = 1H,5H-benzo(1,2-d:4,5-d')bistriazole}, have been synthesized under solvothermal conditions using ZnCl2 and H2-BBTA in DMF (DMF = N,N'-dimethylformamide) or DMA (DMA = N,N'-dimethylacetamide). Moreover, a highly efficient microwave synthetic route has been developed for 1. The structures of both compounds have been determined by single crystal X-ray diffraction. Compound 1 represents the first example of a novel family of cubic microporous metal-organic frameworks (MFU-4; Metal-Organic Framework Ulm University-4), consisting of dianionic BBTA2- linkers and pentanuclear {Zn5Cl4}6+ secondary building units, whereas compound 2 forms a dense 2D layered framework. Phase purity of both compounds was confirmed by X-ray powder diffraction (XRPD), IR spectroscopy, and elemental analysis. TGA and variable temperature XRPD (VTXRPD) experiments carried out on 1 indicate that solvent molecules occluded in the large cavities of 1 can be removed at a temperature >250 degrees C in high vacuum without significant loss of crystallinity, giving rise to a metal-organic framework with void cavities. Due to the small diameter of the aperture joining the two types of cavities present in 1, the diffusion of guest molecules across the crystal lattice is largely restricted at ambient conditions. Compound 1 therefore exhibits a highly selective adsorption for hydrogen vs. nitrogen at -196 degrees C. The framework is stable against moisture and has a specific pore volume of 0.42 cm3 g(-1) estimated from the water adsorption isotherm.
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