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基于双功能吡啶鎓的离子液体固载双铟三(二苯甲酰基甲烷)双(1,10-菲咯啉)用于 CO2 固定。

Bifunctional Pyridinium-Based Ionic-Liquid-Immobilized Diindium Tris(diphenic acid) Bis(1,10-phenanthroline) for CO Fixation.

机构信息

Division of Chemical and Biomolecular Engineering, Pusan National University, Busan, 46241, South Korea.

Korea Research Institute of Chemical Technology, Daejeon, 305600, South Korea.

出版信息

ChemSusChem. 2018 Mar 9;11(5):924-932. doi: 10.1002/cssc.201702193. Epub 2018 Feb 8.

Abstract

A pyridinium-based ionic-liquid-decorated 1 D metal-organic framework (MOF; IL-[In (dpa) (1,10-phen) ]; IL=ionic liquid; dpa=diphenic acid; 1,10-phen=1,10-phenanthroline) was developed as a bifunctional heterogeneous catalyst system for CO -oxirane coupling reactions. An aqueous-microwave route was employed to perform the hydrothermal reaction for the synthesis of the [In (dpa) (1,10-phen) ] MOF, and the IL-[In (dpa) (1,10-phen) ] catalyst was synthesized by covalent postfunctionalization. As a result of the synergetic effect of the dual-functional sites, which include Lewis acid sites (coordinatively unsaturated In sites) and the I ion in the IL functional sites, IL-[In (dpa) (1,10-phen) ] displayed a high catalytic activity for CO -epoxide cycloaddition reactions under mild and solvent-free conditions. Microwave pulses were employed for the first time in MOF-catalyzed CO -epoxide cycloaddition reactions to result in a high turnover frequency of 2000-3100 h . The catalyst had an excellent reusability and maintained a continuous high selectivity. Furthermore, only a small amount of leaching was observed from the spent catalyst. A plausible reaction mechanism based on the synergistic effect of the dual-functional sites that catalyze the CO -epoxide cycloaddition reaction effectively is proposed.

摘要

一种基于吡啶鎓的离子液体修饰的一维金属有机骨架(MOF;IL-[In(dpa)(1,10-phen)];IL=离子液体;dpa=二苯甲酰甲烷;1,10-phen=1,10-菲啰啉)被开发为 CO-环氧乙烷偶联反应的双功能多相催化剂体系。采用水-微波路线进行水热反应合成[In(dpa)(1,10-phen)] MOF,并通过共价后功能化合成 IL-[In(dpa)(1,10-phen)]催化剂。由于双功能位的协同作用,包括路易斯酸位(配位不饱和 In 位)和 IL 官能位中的 I 离子,IL-[In(dpa)(1,10-phen)]在温和无溶剂条件下对 CO-环氧化物加成反应表现出很高的催化活性。微波脉冲首次用于 MOF 催化的 CO-环氧化物加成反应,导致高转化频率为 2000-3100 h-1。催化剂具有优异的可重复使用性,并保持连续的高选择性。此外,从失活催化剂中仅观察到少量浸出。提出了一种基于双功能位协同作用有效催化 CO-环氧化物加成反应的合理反应机制。

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