Covalently connected core–shell NH2-UiO-66@Br-COFs hybrid materials for CO2 capture and I2 vapor adsorption

共价键 吸附 涂层 混合材料 壳体(结构) 化学工程 制作 化学 纳米技术 芯(光纤) 共价有机骨架 材料科学 有机化学 复合材料 工程类 病理 医学 替代医学
作者
Jiajia Wang,Lizhi Wang,You Wang,Fan Yang,Jiawei Li,Xiyuan Guan,Junjiang Zong,Fa Zhou,Jianhan Huang,You‐Nian Liu
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:438: 135555-135555 被引量:76
标识
DOI:10.1016/j.cej.2022.135555
摘要

Metal organic frameworks (MOFs)@covalent organic frameworks (COFs) ([email protected]) hybrid materials not only combine the advantages of MOFs and COFs, but the possible synergistic effect at the MOFs-COFs interface can improve the performance of the hybrid materials greatly. Herein, the Br-COFs shell was in-situ grown on the surface of the NH2-UiO-66 core by Schiff-based reaction and a kind of novel covalently connected core–shell NH2[email protected] hybrid materials were prepared accordingly. Unique structure was generated at the core–shell interface which could be effectively adjusted by the coating amount of Br-COFs. In particular, abundant ultramicropores were generated at the interfacial layers as compared with NH2-UiO-66 and Br-COFs, and the maximum ultramicropore volume (Vultra) was up to 0.157 cm3·g−1. These produced ultramicropores at the core–shell interface made a great positive contribution to the CO2 capacity and the maximum CO2 capacity of the hybrid materials was measured to be 169.5 mg·g−1 at 273 K and 1.0 bar, outperformed the corresponding single MOF and COF. Additionally, the highest I2 vapor uptake of the hybrid materials was determined to be 3.73 g·g−1 and it increased with the increase of the coating amount of Br-COFs. This work presents the successful regulation of the adsorption performance by the rational fabrication of novel hybrid [email protected] interface.
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