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Topology and porosity control of metal–organic frameworks through linker functionalization

机译:通过连接子功能化控制金属有机骨架的拓扑结构和孔隙率

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摘要

Tetratopic organic linkers have been extensively used in Zr-based metal–organic frameworks (MOFs) where diverse topologies have been observed. Achieving meticulous control over the topologies to tune the pore sizes and shapes of the resulting materials, however, remains a great challenge. Herein, by introducing substituents to the backbone of tetratopic linkers to affect the linker conformation, phase-pure Zr-MOFs with different topologies and porosity were successfully obtained under the same synthetic conditions. The conversion of CO2 to valuable cyclic carbonates is a promising route for the mitigation of the greenhouse gas. Owing to the presence of substrate accessible Lewis acidic Zr(iv) sites in the 8-connected Zr6 nodes, the Zr-MOFs in this study have been investigated as heterogenous acid catalysts for CO2 cycloaddition to styrene oxide. The MOFs exhibited drastically different catalytic activities depending on their distinct pore structures. Compared to previously reported MOF materials, a superior catalytic activity was observed with the mesoporous NU-1008, giving an almost 100% conversion under mild conditions.
机译:Tetratopic有机连接子已广泛用于Zr基金属有机框架(MOF),在该框架中已观察到多种拓扑结构。然而,实现对拓扑的精确控制以调整所得材料的孔径和形状仍然是一个巨大的挑战。本文中,通过将取代基引入四位接头的骨架以影响接头构象,在相同的合成条件下成功获得了具有不同拓扑结构和孔隙率的纯相Zr-MOF。将CO2转化为有价值的环状碳酸盐是缓解温室气体的有希望的途径。由于在8个连接的Zr6节点中存在可接近底物的路易斯酸性Zr(iv)位点,因此对本研究中的Zr-MOF进行了研究,将其作为CO2环化成环氧乙烷的异质酸催化剂。 MOF表现出截然不同的催化活性,这取决于它们的独特孔结构。与以前报道的MOF材料相比,中孔NU-1008具有优异的催化活性,在温和条件下的转化率几乎为100%。

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