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用于可回收高效界面催化的共切换分级多孔锆基金属有机框架稳定的皮克林乳液

CO-Switchable Hierarchically Porous Zirconium-Based MOF-Stabilized Pickering Emulsions for Recyclable Efficient Interfacial Catalysis.

作者信息

Pei Xiaoyan, Liu Jiang, Song Wangyue, Xu Dongli, Wang Zhe, Xie Yanping

机构信息

College of Chemistry and Chemical Engineering, Xinyang Normal University, Xinyang 464000, China.

出版信息

Materials (Basel). 2023 Feb 17;16(4):1675. doi: 10.3390/ma16041675.

Abstract

Stimuli-responsive Pickering emulsions are recently being progressively utilized as advanced catalyzed systems for green and sustainable chemical conversion. Hierarchically porous metal-organic frameworks (H-MOFs) are regarded as promising candidates for the fabrication of Pickering emulsions because of the features of tunable porosity, high specific surface area and structure diversity. However, CO-switchable Pickering emulsions formed by hierarchically porous zirconium-based MOFs have never been seen. In this work, a novel kind of the amine-functionalized hierarchically porous UiO-66-(OH) (H-UiO-66-(OH)) has been developed using a post-synthetic modification of H-UiO-66-(OH) by (3-aminopropyl)trimethoxysilane (APTMS), 3-(2-aminoethylamino)propyltrimethoxysilane (AEAPTMS) and 3-[2-(2-aminoethylamino)ethylamino]propyl-trimethoxysilane (AEAEAPTMS), and employed as emulsifiers for the construction of Pickering emulsions. It was found that the functionalized H-UiO-66-(OH) could stabilize a mixture of toluene and water to give an emulsion even at 0.25 wt % content. Interestingly, the formed Pickering emulsions could be reversibly transformed between demulsification and re-emulsification with alternate addition or removal of CO. Spectral investigation indicated that the mechanism of the switching is attributed to the reaction of CO with amino silane on the MOF and the generation of hydrophilic salts, leading to a reduction in MOF wettability. Based on this strategy, a highly efficient and controlled Knoevenagel condensation reaction has been gained by using the emulsion as a mini-reactor and the emulsifier as a catalyst, and the coupling of catalysis reaction, product isolation and MOF recyclability has become accessible for a sustainable chemical process.

摘要

刺激响应型皮克林乳液最近正逐渐被用作绿色可持续化学转化的先进催化体系。具有分级多孔结构的金属有机框架(H-MOFs)因其孔隙率可调、比表面积高和结构多样性等特点,被视为制备皮克林乳液的有前途的候选材料。然而,由具有分级多孔结构的锆基金属有机框架形成的CO响应型皮克林乳液尚未见报道。在这项工作中,通过用(3-氨丙基)三甲氧基硅烷(APTMS)、3-(2-氨乙基氨基)丙基三甲氧基硅烷(AEAPTMS)和3-[2-(2-氨乙基氨基)乙基氨基]丙基三甲氧基硅烷(AEAEAPTMS)对H-UiO-66-(OH)进行后合成修饰,开发了一种新型的胺官能化分级多孔UiO-66-(OH)(H-UiO-66-(OH)),并将其用作乳化剂来构建皮克林乳液。研究发现,即使在0.25 wt%的含量下,功能化的H-UiO-66-(OH)也能稳定甲苯和水的混合物形成乳液。有趣的是,通过交替添加或去除CO,形成的皮克林乳液可以在破乳和再乳化之间可逆转变。光谱研究表明,这种转变机制归因于CO与金属有机框架上的氨基硅烷反应并生成亲水性盐,导致金属有机框架润湿性降低。基于这一策略,通过将乳液用作微型反应器,乳化剂用作催化剂,实现了高效可控的Knoevenagel缩合反应,并且催化反应、产物分离和金属有机框架的可回收性的耦合已成为可持续化学过程的可行方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/535e/9960431/aa10534c52f4/materials-16-01675-g001.jpg

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