Alhamami Mays, Doan Huu, Cheng Chil-Hung
Department of Chemical Engineering, Ryerson University, 350 Victoria Street, Toronto, ON M5B 2K3, Canada,.
Materials (Basel). 2014 Apr 21;7(4):3198-3250. doi: 10.3390/ma7043198.
Metal-organic frameworks (MOFs) are a new class of microporous materials that possess framework flexibility, large surface areas, "tailor-made" framework functionalities, and tunable pore sizes. These features empower MOFs superior performances and broader application spectra than those of zeolites and phosphine-based molecular sieves. In parallel with designing new structures and new chemistry of MOFs, the observation of unique breathing behaviors upon adsorption of gases or solvents stimulates their potential applications as host materials in gas storage for renewable energy. This has attracted intense research energy to understand the causes at the atomic level, using X-ray diffraction, calorimetry, Fourier transform infrared spectroscopy, and molecular dynamics simulations. This article is developed in the following order: first to introduce the definition of MOFs and the observation of their framework flexibility. Second, synthesis routes of MOFs are summarized with the emphasis on the hydrothermal synthesis, owing to the environmental-benign and economically availability of water. Third, MOFs exhibiting breathing behaviors are summarized, followed by rationales from thermodynamic viewpoint. Subsequently, effects of various functionalities on breathing behaviors are appraised, including using post-synthetic modification routes. Finally, possible framework spatial requirements of MOFs for yielding breathing behaviors are highlighted as the design strategies for new syntheses.
金属有机框架材料(MOFs)是一类新型的微孔材料,具有框架灵活性、大表面积、“量身定制”的框架功能以及可调的孔径。这些特性使MOFs具有比沸石和膦基分子筛更优越的性能和更广泛的应用范围。在设计MOFs的新结构和新化学性质的同时,对气体或溶剂吸附时独特的呼吸行为的观察激发了它们作为可再生能源气体储存主体材料的潜在应用。这吸引了大量的研究精力,利用X射线衍射、量热法、傅里叶变换红外光谱和分子动力学模拟在原子水平上理解其原因。本文按以下顺序展开:首先介绍MOFs的定义及其框架灵活性的观察;其次总结MOFs的合成路线,重点是水热合成,因为水具有环境友好和经济可行的特点;第三,总结表现出呼吸行为的MOFs,然后从热力学角度进行解释;随后,评估各种功能对呼吸行为的影响,包括使用后合成修饰路线;最后,强调MOFs产生呼吸行为可能的框架空间要求,作为新合成的设计策略。