金属-生物质框架的合成及其在电催化领域的应用

稂雨繁1, 赵航1, 张雪1, 刘思宇1, 段毅1, 罗卫华1,2*

化工新型材料 ›› 2025, Vol. 53 ›› Issue (9) : 19 -23.

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化工新型材料 ›› 2025, Vol. 53 ›› Issue (9) : 19-23. DOI: 10.19817/j.cnki.issn1006-3536.2025.09.029
综述与专论

金属-生物质框架的合成及其在电催化领域的应用

    稂雨繁1, 赵航1, 张雪1, 刘思宇1, 段毅1, 罗卫华1,2*
作者信息 +

Synthesis of metal-biomass frameworks and their applications in electrocatalysis

  • Lang Yufan1, Zhao Hang1, Zhang Xue1, Liu Siyu1, Duan Yi1, Luo Weihua1,2
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摘要

金属-生物质框架(Bio-MOFs)既保有传统MOFs的可调节孔径和结构、高比表面和高密度的活性位点,又因为生物质分子取代传统有机配体具有环保、低成本的特点,并且在一定程度上能提升本征活性,在电催化方面引起关注。综述了当前Bio-MOFs的常用生物质配体,对其在电催化领域的应用进展进行了介绍,并提出存在的问题及未来领域的发展方向。

Abstract

The metal-biomass frameworks (Bio-MOFs) not only retain the adjustable pore size and structure,high specific surface and high density of active sites of traditional MOFs,but also have the characteristics of environmental friendliness and low cost due to biomass molecules replacing traditional organic ligands,and can improve the intrinsic activity to a certain extent,attracting growing attention in the field of electrocatalysis.In this paper,the commonly used biomass ligands for current Bio-MOFs were summarized,and the application progress of Bio-MOFs in electrocatalysis was reviewed.The existing problems were analyzed,and the future development directions of Bio-MOFs were put forward.

关键词

金属-生物质框架 / 生物质配体 / 制备方法 / 电催化

Key words

metal-biomass framework / biomass ligand / preparation method / electrocatalysis

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金属-生物质框架的合成及其在电催化领域的应用[J]. 化工新型材料, 2025, 53(9): 19-23 DOI:10.19817/j.cnki.issn1006-3536.2025.09.029

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参考文献

[1] International Energy Agency.World energy outlook 2023[R].Paris:IEA,2023.
[2] International Energy Agency.World energy investment 2024—analysis[R].Paris:IEA,2024.
[3] Wang S,Zhang Y,Deng X,et al.Rational construction of loosely packed nickel nanoparticulates with residual HCOO ligands derived from a Ni-MOF for high-efficiency electrocatalytic overall water splitting[J].Journal of Materials Chemistry A,2023,11(10):5222-5232.
[4] Al Amery N,Abid H R,Al-Saadi S,et al.Facile directions for synthesis,modification and activation of MOFs[J].Materials Today Chemistry,2020,17:100343.
[5] Ahmed I,Mondol M M,Jung M J,et al.MOFs with bridging or terminal hydroxo ligands:applications in adsorption,catalysis,and functionalization[J].Coordination Chemistry Reviews,2023,475:214912.
[6] Liu J,Li Y,Lou Z.Recent advancements in MOF/biomass and Bio-MOF multifunctional materials:a review[J].Sustainability,2022,14(10):5768.
[7] Radwan A,Jin H,He D,et al.Design engineering,synthesis protocols,and energy applications of MOF-derived electrocatalysts[J].Nano-Micro Letters,2021,13(1):132.
[8] Mao L,Qian J.Interfacial engineering of heterogeneous reactions for MOF-on-MOF heterostructures[J].Small,2024,20(20):2308732.
[9] Jiang X,He S,Han G,et al.Aqueous one-step modulation for synthesizing monodispersed ZIF-8 nanocrystals for mixed-matrix membrane[J].ACS Applied Materials & Interfaces,2021,13(9):11296-11305.
[10] Anderson S L,Stylianou K C.Biologically derived metal organic frameworks[J].Coordination Chemistry Reviews,2017,349:102-128.
[11] Emami S,Paz F A,Mendes A,et al.Toward the construction of 3D dipeptide-metal frameworks[J].Crystal Growth & Design,2014,14(9):4777-4780.
[12] Beobide G,Castillo O,Luque A,et al.Porous materials based on metal-nucleobase systems sustained by coordination bonds and base pairing interactions[J].CrystEngComm,2015,17(16):3051-3059.
[13] Rachuri Y,Kurisingal J F,Chitumalla R K,et al.Adenine-based Zn(Ⅱ)/Cd(Ⅱ) metal-organic frameworks as efficient heterogeneous catalysts for facile CO2 fixation into cyclic carbonates:a DFT-supported study of the reaction mechanism[J].Inorganic Chemistry,2019,58(17):11389-11403.
[14] Roy I,Stoddart J F.Cyclodextrin metal-organic frameworks and their applications[J].Accounts of Chemical Research,2021,54(6):1440-53.
[15] Gao P,Mukherjee S,Hussain M Z,et al.Porphyrin-based MOFs for sensing environmental pollutants[J].Chemical Engineering Journal,2024,492:152377.
[16] Liu J,Fan Y Z,Li X,et al.A porous rhodium(Ⅲ)-porphyrin metal-organic framework as an efficient and selective photocatalyst for CO2 reduction[J].Applied Catalysis B:Environmental,2018,231:173-181.
[17] Zhou Z,Zhang J,Mukherjee S,et al.Porphyrinic MOF derived single-atom electrocatalyst enables methanol oxidation[J].Chemical Engineering Journal,2022,449:137888.
[18] Yu K,Lee Y R,Seo J Y,et al.Sonochemical synthesis of Zr-based porphyrinic MOF-525 and MOF-545:enhancement in catalytic and adsorption properties[J].Microporous and Mesoporous Materials,2021,316:110985.
[19] Ou Y T,Kabtamu D M,Lakshmanan K,et al.Nitrogen-doped carbonaceous electrode modified by biological metal-organic framework for vanadium redox flow batteries[J].Surface and Coatings Technology,2024,480:130574.
[20] Ismail M,Bustam M A,Yeong Y F.Gallate-based metal-organic frameworks,a new family of hybrid materials and their applications:a review[J].Crystals,2020,10(11):1006.
[21] Richard B,Niyas K,Ankitha M,et al.Biological metal-organic framework-embedded MXene nanocomposite as a wearable transducer patch for real-time monitoring of the sleep hormone[J].ACS Applied Nano Materials,2024,7(8):9585-9597.
[22] Zhang X,Zhao Z,Xu M,et al.A curcumin-based MOF embedded Ag NPs and modified with polydopamine for dual-drug delivery and dual biological window responsive synergetic cancer therapy[J].Particle & Particle Systems Characterization,2023,40(9):2300047.
[23] Can M,Demirci S,Sunol A K,Sahiner N.An amino acid,L-glutamic acid-based metal-organic frameworks and their antibacterial,blood compatibility,biocompatibility,and sensor properties[J].Microporous and Mesoporous Materials,2020,309:110533.
[24] Abdelhamid H N.High performance and ultrafast reduction of 4-nitrophenol using metal-organic frameworks[J].Journal of Environmental Chemical Engineering,2021,9(1):104404.
[25] Zaman H G,Balool,Kutty S R,et al.Post synthetic modification of NH2-(Zr-MOF) via rapid microwave-promoted synthesis for effective adsorption of Pb(Ⅱ) and Cd(Ⅱ)[J].Arabian Journal of Chemistry,2023,16(1):104122.
[26] Singh S,Kumar P,Sini A,et al.An exploration on copper-based metal-organic frameworks as propitious heterogeneous catalyst for coupling reactions[J].ChemistrySelect,2023,8(17):e202204279.
[27] Rubio-Martinez M,Avci-Camur C,Thornton A W,et al.New synthetic routes towards MOF production at scale[J].Chemical Society Reviews,2017,46(11):3453-3480.
[28] Ameloot R,Stappers L,Fransaer J,et al.Patterned growth of metal-organic framework coatings by electrochemical synthesis[J].Chemistry of Materials,2009,21(13):2580-2582.
[29] Ban J,Xu G,Zhang L,et al.Efficient Co-NPC@CNT bifunctional electrocatalytic materials for oxygen reduction and oxygen evolution reactions based on metal-organic framework[J].Nanoscale,2018;10(19):9077-9086.
[30] Amiri M,Bezaatpour A,Ghiasi M,et al.Functional role of metal center and doping on tuning the electrocatalytic oxygen evolution activity of BioMIL-1:experimental and theoretical approaches[J].ACS Applied Energy Materials,2023,6(17):8749-8758.
[31] Mu G,Wang G,Huang Q,et al.A kinetic control strategy for one-pot synthesis of efficient bimetallic metal-organic framework/layered double hydroxide heterojunction oxygen evolution electrocatalysts[J].Advanced Functional Materials,2023,33(13):2211260.
[32] Jin S.How to effectively utilize MOFs for electrocatalysis[J].ACS Energy Letters,2019,4(6):1443-1445.
[33] Li X,Wang H,Zou J,et al.Metal-organic frameworks with ftw-type connectivity:design,pore structure engineering,and potential applications[J].CrystEngComm,2022,24,2189-2200.
[34] Yang Y,Wu H,Yun J,et al.Engineering of defective MOF-801 nanostructures within macroporous spheres for highly efficient and stable water harvesting[J].Advanced Materials,2023,35(31):2210235.
[35] Li J,Luo H,Li B,et al.Application of MOF-derived materials as electrocatalysts for CO2 conversion[J].Materials Chemistry Frontiers,2023,7(23):6107-29.
[36] Yang Y,Sun Q,Xue J,et al.MOF-derived N-doped carbon nanosticks coupled with Fe phthalocyanines for efficient oxygen reduction[J].Chemical Engineering Journal,2023,464:142668.
[37] Fan Q,Song C,Fu P.Advances in the improvement of the quality and efficiency of biomass-derived porous carbon:a comprehensive review on synthesis strategies and heteroatom doping effects[J].Journal of Cleaner Production,2024,452:142169.
[38] Shan Y,Zhang G,Shi Y,et al.Synthesis and catalytic application of defective MOF materials[J].Cell Reports Physical Science,2023,4(3):101301.
[39] Nazir M A,Javed M S,Islam M,et al.MOF@graphene nanocomposites for energy and environment applications[J].Composites Communications,2024,45:101783.
[40] Huang M,Zhou S,Ma D D,et al.MOF-derived MoC-Fe heterojunctions encapsulated in N-doped carbon nanotubes for water splitting[J].Chemical Engineering Journal,2023,473:145170.

基金资助

湖南省自然科学基金项目(2023JJ31009);国家重点研发计划项目(2019YFB1503804)

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