吸附
材料科学
微型多孔材料
金属有机骨架
化学工程
水溶液
吸附
铝
水蒸气
多孔性
有机化学
化学
复合材料
工程类
作者
Timothée Stassin,Steve Waitschat,Niclas Heidenreich,Helge Reinsch,Finn Pluschkell,Dmitry E. Kravchenko,João Marreiros,Ivo Stassen,Jonas van Dinter,Rhea Verbeke,Marcel Dickmann,Werner Egger,Ivo F.J. Vankelecom,Dirk De Vos,Rob Ameloot,Norbert Stock
标识
DOI:10.1002/chem.202001661
摘要
Abstract Energy‐efficient indoors temperature and humidity control can be realised by using the reversible adsorption and desorption of water in porous materials. Stable microporous aluminium‐based metal–organic frameworks (MOFs) present promising water sorption properties for this goal. The development of synthesis routes that make use of available and affordable building blocks and avoid the use of organic solvents is crucial to advance this field. In this work, two scalable synthesis routes under mild reaction conditions were developed for aluminium‐based MOFs: (1) in aqueous solutions using a continuous‐flow reactor and (2) through the vapour‐assisted conversion of solid precursors. Fumaric acid, its methylated analogue mesaconic acid, as well as mixtures of the two were used as linkers to obtain polymorph materials with tuneable water sorption properties. The synthesis conditions determine the crystal structure and either the MIL‐53 or MIL‐68 type structure with square‐grid or kagome‐grid topology, respectively, is formed. Fine‐tuning resulted in new MOF materials thus far inaccessible through conventional synthesis routes. Furthermore, by varying the linker ratio, the water sorption properties can be continuously adjusted while retaining the sigmoidal isotherm shape advantageous for heat transformation and room climatisation applications.
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