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分级多孔金属有机框架的制备 用于CO环加成的慢速化学气相蚀刻

Preparation of Hierarchically Porous Metal-Organic Frameworks Slow Chemical Vapor Etching for CO Cycloaddition.

作者信息

Zhai Xu, Fu Yu

机构信息

Department of Chemistry, College of Sciences, Northeastern University, Shenyang 110819, China.

出版信息

Inorg Chem. 2022 May 9;61(18):6881-6887. doi: 10.1021/acs.inorgchem.2c00223. Epub 2022 Apr 27.

Abstract

Hierarchically porous metal-organic frameworks (HP-MOFs) are a class of promising functional material with micropores, mesopores, and/or macropores, which can address the issue of slow mass transfer and less exposed active sites for primitive microporous MOFs. Despite many attempts that have been achieved through a variety of techniques to date, there is still a myriad of spaces that urgently need to be exploited. In this work, we report the novel synthesis of HP-MOFs slow chemical steam etching. The preparation process can be subtly achieved using water vapor as an etchant; meanwhile, the addition of ethanol into the vapor atmosphere is carried out because it can stabilize the MOF framework well with its hydrophobic alkane tails, thereby slowing the etching rate toward MOFs, successfully realizing the controllable etching manner of MOF components. Furthermore, the joint influence of the water content and etching temperature on the MOF backbone structure etched has thus been investigated in detail. Impressively, we can harvest desired HP-MOFs with the retained crystalline structure at a water content of 50% and an etching temperature of 120 °C. The resulting HK-120/50 product etched exhibits excellent catalytic activity and stability in [2 + 3] cycloaddition of CO than pristine MOF, which can be attributed to the more exposure of active sites and the acceleration of mass transportation across the entire MOF skeleton. Noteworthy, the strategy proposed in this study may be extended to other HP-MOF construction systems due to the lability of most MOFs toward the chemical water vapor.

摘要

分级多孔金属有机框架材料(HP-MOFs)是一类具有前景的功能材料,其具有微孔、介孔和/或大孔,能够解决原始微孔MOFs传质缓慢和活性位点暴露较少的问题。尽管到目前为止已经通过各种技术进行了许多尝试,但仍有大量空间急需开发。在这项工作中,我们报道了通过缓慢化学蒸汽蚀刻法合成新型HP-MOFs。该制备过程可以巧妙地使用水蒸气作为蚀刻剂来实现;同时,向蒸汽气氛中添加乙醇,因为它可以通过其疏水烷烃链很好地稳定MOF框架,从而减缓对MOFs的蚀刻速率,成功实现对MOF组分的可控蚀刻方式。此外,还详细研究了含水量和蚀刻温度对蚀刻的MOF骨架结构的联合影响。令人印象深刻的是,我们可以在含水量为50%和蚀刻温度为120°C的条件下获得具有保留晶体结构的所需HP-MOFs。蚀刻得到的HK-120/50产物在CO的[2 + 3]环加成反应中比原始MOF表现出优异的催化活性和稳定性,这可归因于活性位点的更多暴露以及整个MOF骨架上质量传输的加速。值得注意的是,由于大多数MOFs对化学水蒸气的不稳定性,本研究中提出的策略可能扩展到其他HP-MOF构建系统。

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