功能性金属有机骨架材料催化应用的研究进展

曹轩铭, 丛玉凤*, 黄玮, 尹海川, 何佳航

化工新型材料 ›› 2022, Vol. 50 ›› Issue (3) : 23 -28.

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化工新型材料 ›› 2022, Vol. 50 ›› Issue (3) : 23-28. DOI: 10.19817/j.cnki.issn1006-3536.2022.03.005
综述与专论

功能性金属有机骨架材料催化应用的研究进展

    曹轩铭, 丛玉凤*, 黄玮, 尹海川, 何佳航
作者信息 +

Research progress on catalytic application of functional MOFs

  • Cao Xuanming, Cong Yufeng, Huang Wei, Yin Haichuan, He Jiahang
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文章历史 +
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摘要

金属有机骨架(MOFs)材料是一种结构可设计、高比表面积的多孔材料,MOFs材料本身存在不同的金属中心和不饱和金属位点,利用MOFs结构特点引入具有催化能力的客体或金属配合物合成MOFs功能性衍生物,这些优势使其在催化领域备受关注。对MOFs材料的分类进行了介绍,综述了溶剂热、扩散、微波、超声等具备代表性的合成方法,重点总结讨论了MOFs材料催化作用和功能化催化作用的研究进展,最后提出MOFs材料及功能化衍生物在催化应用中面临的挑战和发展趋势。

Abstract

Metal organic framework (MOFs) is a porous material with a designable structure and high specific surface area.The different metal centers and unsaturated metal sites of MOFs materials themselves,the structural characteristics of MOFs are used to introduce catalytically capable guests or metal complexes,and synthesized MOFs functional derivatives.These advantages make it attract attention in the field of catalysis.The classification of MOFs materials were introduced,and summarized several representative synthesis methods such as solvothermal,diffusion,microwave,ultrasound and mechanochemistry.The research progress of MOFs material catalysis and functional catalysis was focused on.Finally,the challenges and evelopment trends of MOFs materials and functionalized derivatives in catalytic applications were proposed.

关键词

金属有机骨架 / 功能化 / 催化

Key words

metal organic framework / functionalization / catalysis

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引用格式 ▾
功能性金属有机骨架材料催化应用的研究进展[J]. 化工新型材料, 2022, 50(3): 23-28 DOI:10.19817/j.cnki.issn1006-3536.2022.03.005

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参考文献

[1] Bag P P,Wang X S,Cao R.Microwave-assisted large scale synthesis of lanthanide metal-organic frameworks (Ln-MOFs),having a preferred conformation and photoluminescence properties[J].Dalton Trans,2015,44:11954-11962.
[2] Zhu J,Xia T,Cui Y,et al.A turn-on MOF-based luminescent sensor for highly selective detection of glutathione[J].Journal of Solid State Chemistry,2019,270:317-323.
[3] Han G,Wang K,Peng Y,et al.Enhancing higher hydrocarbons capture for natural gas upgrading by tuning van der waals interactions in fcu-type Zr-MOFs[J].Industrial & Engineering Chemistry Research,2017,56:14633-14641.
[4] Orcajo G,Andrés H M,Villajos J A,et al.Li-crown ether complex inclusion in MOF materials for enhanced H2 volumetric storage capacity at room temperature[J].International Journal of Hydrogen Energy,2018,44:19285-19293.
[5] Sun H,Yu X,Ma X,et al.MnOx-CeO2 catalyst derived from metal-organic frameworks for toluene oxidation[J].Catalysis Today,2020,355:580-586.
[6] Lee J,Kwak S Y.Mn-doped maghemite (γ-Fe2O3) from metal-organic framework accompanying redox reaction in a bimetallic system:the structural phase transitions and catalytic activity toward NOx removal[J].ACS Omega,2018,3:2634-2640.
[7] Lázaro I A,Forgan R S.Application of zirconium MOFs in drug delivery and biomedicine[J].Coordination Chemistry Reviews,2019,380:230-259.
[8] Wang J,Schopfer M P,Sarjeant A A N,et al.Heme-copper assembly mediated reductive coupling of nitrogen monoxide (·NO)[J].Journal of the American Chemical Society,2009,131:450-451.
[9] Rani Reetu,Deep Akash,Mizaikoff Boris,et al.Enhanced hydrothermal stability of Cu MOF by post synthetic modification with amino acids[J].Vacuum,2019,164:449-457.
[10] Nie Ming,Sun Hai,Lei Dan,et al.Novel Pd/MOF electrocatalyst for hydrogen evolution reaction[J].Materials Chemistry and Physics,2020,254:123481.
[11] Zhang Boce,Luo Yaguang,Kanyuck Kelsey,et al.Facile and template-free solvothermal synthesis of mesoporous/macroporous metal-organic framework nanosheets[J].RSC Advances,2018,8(58):33059-33064.
[12] Sun Yuxiu,Huang Hongliang,Guo Xiangyu,et al.Controlling metal ion counter diffusion in confined spaces for in situ growth of mixed metal MOF membranes for gas separation[J].Chem Nano Mat,2019,5(9):1244-1250.
[13] Laha Subhajit,Chakraborty Anindita,Maji Tapas Kumar.Synergistic role of microwave and perturbation toward synthesis of hierarchical porous MOFs with tunable porosity[J].Inorganic Chemistry,2020,59(6):3775-3782.
[14] Tari Nesa Esmaeilian,Tadjarodi Azadeh,Tamnanloo Javad,et al.One pot microwave synthesis of MCM-41/Cu based MOF composite with improved CO2 adsorption and selectivity[J].Microporous and Mesoporous Materials,2016,231(1):154-162.
[15] Dastbaz Abolfazl,Karimi-Sabet Javad,Moosavian Mohammad Ali.Sonochemical synthesis of novel decorated graphene nanosheets with amine functional Cu-terephthalate MOF for hydrogen adsorption:effect of ultrasound and graphene content[J].International Journal of Hydrogen Energy,2019,44(48):26444-26458.
[16] 尹洪伟,郭丽芳,张文磊,等.镍基MOF电极材料物理超声改性及电化学性能[J].微纳电子技术,2020(5):372-378.
[17] 张林建,李芳芹,任建兴,等.金属有机骨架材料的合成,改性技术及其吸附分离CO2的应用[J].上海电力学院学报,2019,35(3):267-271.
[18] 马涛.MOFs负载金属纳米颗粒的机械化学法制备及催化性能研究[D].福州:福州大学,2014.
[19] Prasad R R R,Dawson D M,Cox P A,et al.A bifunctional MOF catalyst containing metalcchosphine and Lewis acidic active sites[J].Chemistry,2018,24(57):1-11.
[20] Konavarapu Satyanarayana K,Ghosh Debanjali,Dey Avishek,et al.Isostructural Ni(Ⅱ) metal-organic frameworks (MOFs) for efficient electrocatalysis of oxygen evolution reaction and for gas sorption properties[J].Chemistry-A European Journal,2019,25(47):11141-11146.
[21] Chen D T,Bi J R,Wu J,et al.Zirconium based nano metal-organic framework UiO-67-NH2 with high drug loading for controlled release of camptothecin[J].Journal of Inorganic and Organometallic Polymers and Materials,2020,30:573-579.
[22] Dhakshinamoorthy Amarajothi,Alvaro Mercedes,Garcia Hermenegildo.Metal-organic frameworks as heterogeneous catalysts for oxidation reactions[J].Catalysis Science & Technology,2011(1):856-867.
[23] Wang Lei,Jin Pengxia,Duan Shuhua,et al.In-situ incorporation of Copper(Ⅱ) porphyrin functionalized zirconium MOF and TiO2 for efficient photocatalytic CO2 reduction[J].Science Bulletin,2019,64(13):926-933.
[24] Leng Fucheng,Liu Hang,Ding Meili,et al.Boosting photocatalytic hydrogen production of porphyrinic MOFs:the metal location in metalloporphyrin matters[J].ACS Catalysis,2018,8(5):4583-4590.
[25] Xia Huicong,Zhang Jianan,Yang Zhao,et al.2D MOF nanoflake-assembled spherical-micro-structures for enhanced supercapacitor and electrocatalysis performances[J].Nano-Micro Letters,2017,9:43-54.
[26] Sun Liming,Yuan Yusheng,Wang Fan,et al.Selective wet-chemical etching to create TiO2@MOF frame heterostructure for efficient photocatalytic hydrogen evolution[J].Nano Energy,2020,74:104909.[27] 谢培栋.基于吡咯并吡咯的有机多孔框架结构的设计,合成和性能研究[D].武汉:江汉大学,2019.
[28] 张巧玲.源于MOF的电化学催化剂的制备及其性能的研究[D].长春:长春理工大学2019.
[29] Yu M,Huang Y,Li C,et al.Building three-dimensional graphene frameworks for energy storage and catalysis[J].Advanced Functional Materials,2015,25:324.
[30] Zhu C,Liu T,Qian F,et al.Supercapacitors based on three-dimensional hierarchical graphene aerogels with periodic macropores[J].Nano Letters,2016,16(6):3448-3456.
[31] Liu X,Shi C,Zhai C W,et al.Cobalt-based layered metal-organic framework as an ultrahigh capacity supercapacitor electrode material[J].ACS Applied Materials & Interfaces,2016,8(7):4585.
[32] Liu Yazhi,Li Gaoran,Fu Jing,et al.Strings of porous carbon polyhedrons as self-standing cathode host for high-energy-density lithium-sulfur batteries[J].Angewandte Chemie International Edition,2017,56(5):6176.
[33] Liu L,Yan Y,Cai Z,et al.Growth-oriented Fe-based MOFs synergized with graphene aerogels for high-performance supercapacitors[J].Advanced Materials Interfaces,2018,5(8):1701548.
[34] Yang Ke,Yan Yu,Chen Wen,et al.Nut-like MOF/hydroxylated graphene hybrid materials for adsorptive desulfurization of thiophene[J].RSC Advances,2018,8(42):23671-23678.

基金资助

国家自然科学基金(21702087)

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