MOF(Fe)复合材料的类型及其应用研究进展

季青豪, 王静, 陈邵婷, 江白雪, 王春梅*

化工新型材料 ›› 2023, Vol. 51 ›› Issue (8) : 60 -64.

PDF
化工新型材料 ›› 2023, Vol. 51 ›› Issue (8) : 60-64. DOI: 10.19817/j.cnki.issn1006-3536.2023.08.012
综述与专论

MOF(Fe)复合材料的类型及其应用研究进展

    季青豪, 王静, 陈邵婷, 江白雪, 王春梅*
作者信息 +

Classification and research progress in application of MOF(Fe) composites

  • Ji Qinghao, Wang Jing, Chen Shaoting, Jiang Baixue, Wang Chunmei
Author information +
文章历史 +
PDF

摘要

铁基金属有机骨架材料[MOF(Fe)]可作为非均相芬顿试剂, 有效地进行氧化还原循环, 在废水处理方面具有广阔的应用前景。介绍了MOF(Fe)复合材料的类型及其结构, 总结了MOF(Fe)复合材料在去除有机污染物、无机污染物和生物污染物等方面的应用研究进展, 阐述了MOF(Fe)复合材料催化去除有机污染物、无机污染物和生物污染物的机理, 提出了MOF(Fe)复合材料今后的发展方向。

Abstract

Iron-based metal-organic frameworks [MOF(Fe)] can be used as a heterogeneous Fenton reagent to effectively conduct redox cycle, and has broad application prospects in wastewater treatment.The types and their structures of MOF(Fe) composites were introduced.The application research progress of MOF(Fe) composites in removing organic, inorganic and biological pollutants was summarized.The catalysis mechanisms for removing organic, inorganic and biological contaminants by MOF(Fe) composites were illustrated.The future research directions of MOF(Fe) composites were presented.

关键词

MOF(Fe) / 复合材料 / 废水处理 / 吸附 / 催化

Key words

MOF(Fe) / composites / wastewater treatment / adsorption / catalysis

引用本文

引用格式 ▾
MOF(Fe)复合材料的类型及其应用研究进展[J]. 化工新型材料, 2023, 51(8): 60-64 DOI:10.19817/j.cnki.issn1006-3536.2023.08.012

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Konnerth H,Matsagar B M,Chen S S,et al.Metal-organic framework (MOF)-derived catalysts for fine chemical production[J].Coordination Chemistry Reviews,2020,416:213319.
[2] Li T F,Lu M,Gao Y H,et al.Double layer MOFs M-ZIF-8@ZIF-67:the adsorption capacity and removal mechanism of fipronil and its metabolites from environmental water and cucumber samples[J].Journal of Advanced Research,2020,24:159-166.
[3] Sung Y S,Lin L Y,Lin H Y.Study of pH value effect on synthesizing UIO-66 and carbonized UIO-66 as active material for solid-state supercapacitors[J].Journal of the Taiwan Institute of Chemical Engineers,2020,116:197-204.
[4] Wang C C,Wang X,Liu W.The synthesis strategies and photocatalytic performances of TiO2/MOFs composites:a state-of-the-art review[J].Chemical Engineering Journal,2020,391:123601.
[5] Yang M,Zhou Y N,Cao Y N,et al.Advances and challenges of Fe-MOFs based materials as electrocatalysts for water splitting[J].Applied Materials Today,2020,20:100692.
[6] Wu D F,Tian N N,Sun X Y,et al.Enhanced fenton-like catalysis by facilely prepared nano-scale NCFOH/HKUST composites with synergistic effect for dye degradation[J].Materials Chemistry and Physics,2021,258:123980.
[7] Yu J,Cao J,Yang Z H,et al.One-step synthesis of Mn-doped MIL-53(Fe) for synergistically enhanced generation of sulfate radicals towards tetracycline degradation[J].Journal of Colloid and Interface Science,2020,580:470-479.
[8] Feng T,Bavumiragira J P,Wambui M A,et al.Hierarchical porous induced competent removal of low concentration azo dye molecules by generating a leachy crystalline structure H-MIL-53(Fe)[J].Chinese Chemical Letters,2020,31(10):2717-2720.
[9] Nguyen V H,Bach L G,Bui P,et al.Composite photocatalysts containing MIL-53(Fe) as a heterogeneous photo-Fenton catalyst for the decolorization of Rhodamine B under visible light irradiation[J].Journal of Environmental Chemical Engineering,2018,6(6):7434-7441.
[10] Tan K L,Foo K Y.Preparation of MIL-100 via a novel water-based heatless synthesis technique for the effective remediation of phenoxyacetic acid-based pesticide[J].Journal of Environmental Chemical Engineering,2021,9(1):104923.
[11] Zhao C,Wang J S,Chen X,et al.Bifunctional Bi12O17Cl2/MIL-100(Fe) composites toward photocatalytic Cr(Ⅵ) sequestration and activation of persulfate for bisphenol A degradation[J].Science of the Total Environment,2021,752:141901.
[12] Mahmoudi Farzaneh,Amini Mostafa M,Sillanp?? Mika.Hydrothermal synthesis of novel MIL-100(Fe)@SBA-15 composite material with high adsorption efficiency towards dye pollutants for wastewater remediation[J].Journal of the Taiwan Institute of Chemical Engineers,2020,116:303-313.
[13] Ploychompoo S,Chen J D,Luo H J,et al.Fast and efficient aqueous arsenic removal by functionalized MIL-100(Fe)/rGO/δ-MnO2 ternary composites:adsorption performance and mechanism[J].Journal of Environmental Sciences,2020,91(5):22-34.
[14] Khasevani S G,Gholami M R.Novel MIL-88A/g-C3N4 nanocomposites:fabrication,characterization and application as a photocatalyst[J].Inorganic Chemistry Communications,2019,102:221-228.
[15] Liu W B,Zhou J B,Ding L D,et al.MIL-88/PVB nanofiber as recyclable heterogeneous catalyst for photocatalytic and Fenton process under visible light irradiation[J].Chemical Physics Letters,2020,749:137431.
[16] Yuan R R,Yue C L,Qiu J L,et al.Highly efficient sunlight-driven reduction of Cr(Ⅵ) by TiO2@NH2-MIL-88B(Fe) heterostructures under neutral conditions[J].Applied Catalysis B:Environmental,2019,251:229-239.
[17] Jarrah A,Farhadi S.Encapsulation of K6P2W18O62 into magnetic nanoporous Fe3O4/MIL-101(Fe) for highly enhanced removal of organic dyes[J].Journal of Solid State Chemistry,2020,285:121264.
[18] Wang Y T,Wang K Q,Lin J,et al.The preparation of nano-MIL-101(Fe)@chitosan hybrid sponge and its rapid and efficient adsorption to anionic dyes[J].International Journal of Biological Macromolecules,2020,165(PB):2684-2692.
[19] Zhang Y,Xiong M Y,Sun A,et al.MIL-101(Fe) nanodot-induced improvement of adsorption and photocatalytic activity of carbon fiber/TiO2-based weavable photocatalyst for removing pharmaceutical pollutants[J].Journal of Cleaner Production,2021,290:125782.
[20] Taha A A,Huang L B,Ramakrishna S,et al.MOF[NH2-MIL-101(Fe)] as a powerful and reusable Fenton-like catalyst[J].Journal of Water Process Engineering,2020,33:101004.
[21] Zhang Y,Zhou J B,Chen X,et al.Coupling of heterogeneous advanced oxidation processes and photocatalysis in efficient degradation of tetracycline hydrochloride by Fe-based MOFs:synergistic effect and degradation pathway[J].Chemical Engineering Journal,2019,369:745-757.
[22] Lu W L,Duan C,Liu C R,et al.A self-cleaning and photocatalytic cellulose-fiber-supported ‘Ag@AgCl@MOF-cloth’ membrane for complex wastewater remediation[J].Carbohydrate Polymers,2020,247:116691.
[23] Liu N,Wang J L,Wu J X,et al.Magnetic Fe3O4@MIL-53(Fe) nanocomposites derived from MIL-53(Fe) for the photocatalytic degradation of ibuprofen under visible light irradiation[J].Materials Research Bulletin,2020,132:111000.
[24] Zhong Z,Li M,Fu J H,et al.Construction of Cu-bridged Cu2O/MIL(Fe/Cu) catalyst with enhanced interfacial contact for the synergistic photo-Fenton degradation of thiacloprid[J].Chemical Engineering Journal,2020,395:125184.
[25] Azizi A,Forghani M,Livani M J,et al.Adsorption of lead(Ⅱ) and chromium(Ⅵ) from aqueous environment onto metal-organic framework MIL-100(Fe):synthesis,kinetics,equilibrium and thermodynamics[J].Journal of Solid State Chemistry,2020,291:121636.
[26] Li L C,Xu Y L,Zhong D J,et al.CTAB-surface-functionalized magnetic MOF@MOF composite adsorbent for Cr(Ⅵ) efficient removal from aqueous solution[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2020,586:124255.
[27] Chen D D,Yi X H,Zhao C,et al.Polyaniline modified MIL-100(Fe) for enhanced photocatalytic Cr(Ⅵ) reduction and tetracycline degradation under white light[J].Chemosphere,2020,245:125659.
[28] He Z J,Liang R W,Zhou C,et al.Carbon quantum dots (CQDs)/noble metal co-decorated MIL-53(Fe) as difunctional photocatalysts for the simultaneous removal of Cr(Ⅵ) and dyes[J].Separation and Purification Technology,2021,255:117725.
[29] Pang D,Wang C C,Wang P,et al.Superior removal of inorganic and organic arsenic pollutants from water with MIL-88A(Fe) decorated on cotton fibers[J].Chemosphere,2020,254:126829.
[30] Li H,Zhao C,Li X,et al.Boosted photocatalytic Cr(Ⅵ) reduction over Z-scheme MIL-53(Fe)/Bi12O17Cl2 composites under white light[J].Journal of Alloys and Compounds,2020,844:156147.
[31] Cheng Y,Song R Q,Wu K,et al.The enhanced visible-light-driven antibacterial performances of PTCDI-PANI(Fe(Ⅲ)-doped) heterostructure[J].Journal of Hazardous Materials,2020,383:121166.
[32] Wang Y,Lin L,Li F,et al.Enhanced photocatalytic bacteriostatic activity towards Escherichia coli using 3D hierarchical microsphere BiOI/BiOBr under visible light irradiation[J].Photochemical and Photobiological Sciences,2016,15(5):666-672.
[33] Lv S W,Liu J M,Yang F E,et al.A novel photocatalytic platform based on the newly-constructed ternary composites with a double p-n heterojunction for contaminants degradation and bacteria inactivation[J].Chemical Engineering Journal,2021,409:128269.
[34] Duan C,Liu C R,Meng X,et al.Facile synthesis of Ag NPs@MIL-100(Fe)/guar gum hybrid hydrogel as a versatile photocatalyst for wastewater remediation:photocatalytic degradation,water/oil separation and bacterial inactivation[J].Carbohydrate Polymers,2020,230:115642.
[35] An J B,Li Y L,Chen W,et al.Electrochemically-deposited PANI on iron mesh-based metal-organic framework with enhanced visible-light response towards elimination of thiamphenicol and E.coli[J].Environmental Research,2020,191:110067.

基金资助

江苏省研究生科研创新计划项目(KYCX19-2062);南通大学大学生创新训练计划项目(2022130)

AI Summary AI Mindmap
PDF

631

访问

0

被引

导航
相关文章

AI思维导图

/