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用于二氧化碳捕集的具有超高金属有机框架负载量的分级多孔结构吸附剂

Hierarchically Porous Structured Adsorbents with Ultrahigh Metal-Organic Framework Loading for CO Capture.

作者信息

Gebremariam Solomon K, Varghese Anish Mathai, Ehrling Sebastian, Al Wahedi Yasser, AlHajaj Ahmed, Dumée Ludovic F, Karanikolos Georgios N

机构信息

Department of Chemical and Petroleum Engineering, Khalifa University, P.O. Box 127788, Abu Dhabi 127788, United Arab Emirates.

Center for Catalysis and Separation (CeCaS), Khalifa University, P.O. Box 127788, Abu Dhabi 127788, United Arab Emirates.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 25;16(38):50785-50799. doi: 10.1021/acsami.4c10730. Epub 2024 Sep 16.

Abstract

Metal-organic frameworks (MOFs) have emerged as promising candidates for CO adsorption due to their ultrahigh-specific surface area and highly tunable pore-surface properties. However, their large-scale application is hindered by processing issues associated with their microcrystalline powder nature, such as dustiness, pressure drop, and poor mass transfer within packed beds. To address these challenges, shaping/structuring micron-sized polycrystalline MOF powders into millimeter-sized structured forms while preserving porosity and functionality represents an effective yet challenging approach. In this study, a facile and versatile strategy was employed to integrate moisture-stable and scalable microcrystalline MOFs (UiO-66 and ZIF-8) into a poly(acrylonitrile) matrix to fabricate readily processable, millimeter-sized hierarchically porous structured adsorbents with ultrahigh MOF loadings (∼90 wt %) for direct industrial carbon capture applications. These structured composite beads retained the physicochemical properties and separation performance of the pristine MOF crystal particles. Structured UiO-66 and ZIF-8 exhibited high specific surface areas of 1130 m g and 1431 m g, respectively. The structured UiO-66 achieved a CO adsorption capacity of 2.0 mmol g at 1 bar and a dynamic CO/N selectivity of 17 for a CO/N gas mixture with a 15/85 volume ratio at 25 °C. Furthermore, the structured adsorbents exhibited excellent cyclability in static and dynamic CO adsorption studies, making them promising candidates for practical application.

摘要

金属有机框架材料(MOFs)因其超高的比表面积和高度可调节的孔表面性质,已成为有前景的CO吸附材料。然而,其微晶粉末性质带来的加工问题,如粉尘、压降以及填充床内传质不佳等,阻碍了它们的大规模应用。为应对这些挑战,将微米级多晶MOF粉末成型/构建为毫米级结构形式,同时保持孔隙率和功能,是一种有效但具有挑战性的方法。在本研究中,采用了一种简便通用的策略,将水分稳定且可扩展的微晶MOFs(UiO - 66和ZIF - 8)整合到聚(丙烯腈)基质中,以制备易于加工的、毫米级具有超高MOF负载量(约90 wt%)的分级多孔结构吸附剂,用于直接工业碳捕集应用。这些结构化复合珠保留了原始MOF晶体颗粒的物理化学性质和分离性能。结构化的UiO - 66和ZIF - 8分别展现出1130 m²/g和1431 m²/g的高比表面积。结构化的UiO - 66在1 bar下实现了2.0 mmol/g的CO吸附容量,对于25°C下体积比为15/85的CO/N₂气体混合物,其动态CO/N₂选择性为17。此外,在静态和动态CO吸附研究中,结构化吸附剂表现出优异的循环性能,使其成为实际应用的有潜力候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f66c/11440468/3f2d253f2eab/am4c10730_0001.jpg

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