| 77 | 0 | 197 |
| 下载次数 | 被引频次 | 阅读次数 |
金属-多酚网络(MPNs)是一种新兴的超分子配位材料,通过金属离子与天然多酚之间的定向分子配位作用构建。MPNs兼具金属离子功能特性与多酚结构的高亲和力优势,并具有独特的协同效应,其温和的合成条件、优异的生物相容性及结构稳定性,在环境领域已初步展现出显著应用价值。文章聚焦MPNs在环境领域的应用创新,系统梳理其制备方法及结构调控策略,深入分析其在污染治理、绿色能源开发、资源可持续利用等环境领域的前沿应用案例及独特优势,重点探讨MPNs在污染物靶向吸附、催化降解、油水分离、电池电极材料开发中的相关作用机制,为揭示MPNs在环境领域的应用潜力提供理论参考,同时剖析MPNs材料体系优化升级面临的关键挑战,以期推动其在环境领域的进一步发展和应用,为解决当前环境问题提供新的思路和方法。
Abstract:Metal-phenolic networks(MPNs) as an emerging supramolecular coordination material, are constructed through directed molecular coordination between metal ions and natural polyphenols. They combine the functional characteristics of metal ions with the high affinity advantages of polyphenol structures and have a unique synergistic effect. With their mild synthesis conditions, excellent biocompatibility, and structural stability, they have initially demonstrated significant application value in the environmental field. This paper focuses on the innovative applications of MPNs in the environmental field, systematically reviews their preparation methods and structural regulation strategies, and deeply analyzes their cutting-edge application cases and future development directions in pollution control, green energy development, and sustainable resource utilization. The unique mechanisms of MPNs in targeted adsorption of pollutants, catalytic degradation, oil-water separation and development of battery electrode materials are discussed in detail. This provides a theoretical reference for revealing the application potential and challenges of MPNs in the environmental field. At the same time, the key challenges faced by the optimization and upgrading of the MPNs material system are analyzed, in order to promote its further development and application in the field of environment, and provide new ideas and methods for solving current environmental problems.
1 Pinto T,Aires A,Cosme F,et al.Bioactive(poly)phenols,volatile compounds from vegetables,medicinal and aromatic plants[J].Foods,2021,10(1):106.
2 Rani P,Yu X,Liu H T,et al.Material,antibacterial and anticancer properties of natural polyphenols incorporated soy protein isolate:A review[J].European Polymer Journal,2021,152.
3 Chojnacka K,Skrzypczak D,Izydorczyk G,et al.Antiviral properties of polyphenols from plants[J].Foods,2021,10(10):2277.
4 Riccucci G,Cazzola M,Ferraris S,et al.Surface functionalization of Ti6Al4V with an extract of polyphenols from red grape pomace[J].Materials&Design,2021,206:109766.
5 Ejima H,Richardson J J,Liang K,et al.One-step assembly of coordination complexes for versatile film and particle engineering[J].Science,2013,341(6142):154-157.
6 Guo J L,Tardy B L,Christofferson A J,et al.Modular assembly of superstructures from polyphenolfunctionalized building blocks[J].Nature Nanotechnology,2016,11(12):1105-1111.
7焦婷,王稳航,程芸,等.金属-多酚网络的组装、功能特性及其在食品领域中的应用研究进展[J].食品科学,2022,43(1):232-239.
8 liang H S,Li J,He Y,et al.Engineering multifunctional films based on metal-phenolic networks for rational p H-responsive delivery and cell imaging[J].ACS Biomaterials Science&Engineering,2016,2(3):317-325.
9 Lin Z X,Zhou J J,Christina C J,et al.Ordered mesoporous metal-phenolic network particles[J].Journal of the American Chemical Society,2020,142(1):335-341.
10 Geng H M,Zhuang L P,Li M Q,et al.Interfacial assembly of metal-phenolic networks for hair dyeing[J].ACSapplied Materials&Interfaces,2020,12(26):29826-29834.
11 Kim C J,Ercole J,Chen J Q,et al.Macromolecular engineering of thermoresponsive metal-phenolic networks[J].Journal of the American Chemical Society,2021,144(1):503-514
12 Fan J X,Zheng D W,Mei W W,et al.A metal-polyphenol network coated nanotheranostic system for metastatic tumor treatments[J].Small,2017,13(48):1702714.
13胥芷灵,贾永艳,祝侠丽,等.金属-多酚网络在肿瘤诊疗中的研究进展[J].中国肿瘤,2022,31(6):463-472.
14 Duan J,Chen Z,Liang X,et al.Engineering M2-type macrophages with a metal polyphenol network for peripheral artery disease treatment[J].Free Radical Biology and Medicine,2024,213:138-149.
15 Jiang W,Wang Q,Cui D,et al.Metal-polyphenol network coated magnetic hydroxyapatite for p H-activated MRimaging and drug delivery[J].Colloids and Surfaces,B.Biointerfaces,2023,222:113076.
16 Zhang H,Dan M A,Liao A,et al.Polyphenol-metal complex with dopamine for dyeing natural white hair[J].Journal of Cosmetic Science:The Official Journal of the Society of Cosmetic Chemists,2023,74(4):200-215.
17 MilinčićD D,PopovićA D,LevićM S,et al.Application of polyphenol-loaded nanoparticles in food industry[J].Nanomaterials,2019,9(11):1629.
18 Yao T,Zeng X,Li H,et al.Metal-polyphenol coordination nanosheets with synergistic peroxidase-like and photothermal properties for efficient antibacterial treatment[J].International Journal of Biological Macromolecules,2024,269(Part2):132115.
19 Köroğlu G D,Karabulut G,Catalkaya G,et al.The effect of polyphenol-loaded electrospun fibers in food systems[J].Food and Bioprocess Technology,2025,18(6):1-23.
20 Ju Y,Cui J W,Muellner M,et al.Engineering low-fouling and p H-degradable capsules through the assembly of metal-phenolic networks[J].Biomacromolecules,2015,16(3):807-814.
21 Kim S,Kim D S,Kang S M.Reversible layer‐by‐layer deposition on solid substrates inspired by mussel byssus cuticle[J].Chemistry-An Asian Journal,2014,9(1):63-66.
22 Ringwald C,Ball V.Layer-by-layer deposition of tannic acid and Fe3+cations is of electrostatic nature but almost ionic strength independent at p H 5[J].Journal of Colloid and Interface Science,2015,450:119-126.
23 Yang W,Sousa A M M,Fan X,et al.Electrospun ultra-fine cellulose acetate fibrous mats containing tannic acidFe3+complexes[J].Carbohydrate polymers,2017,157:1173-1179.
24刘涛,冯俊,张先正.用于肿瘤诊疗的金属-多酚网络多功能材料[J].功能高分子学报,2019,32(4):421-433.
25 Ping Y,Guo J,Ejima H,et al.p H-responsive capsules engineered from metal-phenolic networks for anticancer drug delivery[J].Small,2015,11(17):2032-2036.
26 Ejima H,Richardson J J,Caruso F.Phenolic film engineering for template-mediated microcapsule preparation[J].Polymer Journal,2014,46(8):452-459.
27 Besford Q A,Ju Y,Wang T Y,et al.Self‐assembled metal-phenolic networks on emulsions as low‐fouling and p H‐responsive particles[J].Small,2018,14(39):1802342.
28 Dai Y,Guo J,Wang T Y,et al.Self‐assembled nanoparticles from phenolic derivatives for cancer therapy[J].Advanced Healthcare Materials,2017,6(16):1700467.
29 Wu D,Zhou B,Wang S,et al.Pickering emulsion stabilized by metal-phenolic architectures:A straightforward in situ assembly strategy[J].Journal of Agricultural and Food Chemistry,2021,69(39):11709-11719.
30 Wei J,Wang G,Chen F,et al.Sol-gel synthesis of metal-phenolic coordination spheres and their derived carbon composites[J].Angewandte Chemie,2018,130(31):9986-9991.
31 Maerten C,Lopez L,Lupattelli P,et al.Electrotriggered confined self-assembly of metal-polyphenol nanocoatings using a morphogenic approach[J].Chemistry of Materials,2017,29(22):9668-9679.
32 Chen Y,Bai Y,Meng L,et al.Engineering nanocomposite metal-phenolic network membranes with hollow MOFs via in-situ etching for High-efficiency organic solvent nanofiltration[J].Chemical Engineering Journal,2022,437(P1):135289.
33 Xu W,Lin Z,Pan S,et al.Direct assembly of metal‐phenolic network nanoparticles for biomedical applications[J].Angewandte Chemie,2023,135(45):e202312925.
34 Tan X,Sheng R,Liu Z,et al.Assembly of metal-phenolic networks onto microbubbles for one‐step generation of functional microcapsules[J].Small,2024,20(1):2305325.
35 Ma W,Liu Y,Jiang X,et al.Solvation enabled highly efficient gradient assembly creates robust metal-phenolic coatings[J].Journal of Colloid and Interface Science,2025,683(Part2):643-654.
36 Wen Y,Yang X,Li Y,et al.Progress reports of metal-phenolic network engineered membranes for water treatment[J].Separation and Purification Technology,2023,320:124225.
37 Lunardi V B,Cheng K C,Lin S P,et al.Modification of cellulosic adsorbent via iron-based metal phenolic networks coating for efficient removal of chromium ion[J].Journal of Hazardous Materials,2024,464:132973.
38 Zhang Y,Shen L,Zhong Q Z,et al.Metal-phenolic network coatings for engineering bioactive interfaces[J].Colloids and Surfaces B:Biointerfaces,2021,205:111851.
39 Cheng X,Zhu Y,Tang S,et al.Material priority engineered metal-polyphenol networks:Mechanism and platform for multifunctionalities[J].Journal of Nanobiotechnology,2022,20(1):255.
40 Zhong Q Z,Pan S,Rahim M A,et al.Spray assembly of metal-phenolic networks:Formation,growth,and applications[J].ACS Applied Materials&Interfaces,2018,10(39):33721-33729.
41 Rahim M A,Lin G,Tomanin P P,et al.Self-assembly of a metal-phenolic sorbent for broad-spectrum metal sequestration[J].ACS Applied Materials&Interfaces,2020,12(3):3746-3754.
42 Choudhury T R,Alam S,Alam M N E,et al.Innovative metal-phenolic nanocomposite sorbent:A groundbreaking solution for arsenic-free drinking water-synthesis and characterization approaches[J].Desalination and Water Treatment,2024,320:100764.
43 Qiu H,Ni W,Yang L,et al.Remarkable ability of Pb(Ⅱ) capture from water by self-assembled metal-phenolic networks prepared with tannic acid and ferric ions[J].Chemical Engineering Journal,2022,450(P2):138161.
44 Song Y,Zhang M,Chen Z,et al.Sustainable Pb(Ⅱ) removal and recovery from wastewater using a bioinspired metal‐phenolic hybrid membrane with efficient regeneration[J].Chem Sus Chem,2024,18(7):e202401770.
45 Cheng W,Wen J,Yang W.Removal of hexavalent chromium using one-step synthesized metal-polyphenol composites epigallocatechin gallate/titanium:Performance,interference,and mechanisms[J].Journal of Environmental Chemical Engineering,2024,12(1):111866.
46 Santoso S P,Bundjaja V,Angkawijaya A E,et al.One-step synthesis of nitrogen-grafted copper-gallic acid for enhanced methylene blue removal[J].Scientific Reports,2021,11(1):12021.
47 Gao Y,Tang F,Zhang J.Metal-polyphenol network loaded ZIF-8 for efficient removal of fluoroquinolone antibiotics[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2024,702(P1):134950.
48 Liu Q,Han L,Feng T,et al.Constructing metal-phenolic network (MPN) microspheres as efficient adsorbent for pollutants removal[J].Particuology,2025,98:241-248.
49 Qian Y,Wan P,Hursthouse A S,et al.A novel zero-valent iron/titanium tannate composite for deep removal of nitrogen from water[J].Chemical Engineering Journal,2025,508:160937.
50 Guo Z,Lu J,Xie W,et al.Facile preparation of recyclable Fe@metal phenolic networks-Au system for catalytic reduction of 4-nitrophenol[J].Materials Chemistry and Physics,2022,281:125907.
51 Sahu T K,Gupta A,Agarwal V,et al.Facile synthesis of enzyme-mimicking cobalt-polyphenol coordination network for oxidation of phenolic pollutants[J].ACS Applied Engineering Materials,2023,1(12):3194-3204.
52 Zhu Y,Fu P,Qin L,et al.Controllable self-assembly of double polyphenol-metal-network:A universal gravel-like lignin catalysts for water purification[J].International Journal of Biological Macromolecules,2024,282:137023.
53 Zhang Q,Wei J,Bai Y,et al.Metal polyphenol network structure regulated Fe2O3-Ce O2/PC for the enhanced electro-Fenton-like remediation of organic wastewater in a widely applicable p H range[J].Separation and Purification Technology,2024,351:128134.
54 Yang J,Wang L,Xie A,et al.Facile surface coating of metal-tannin complex onto PVDF membrane with underwater Superoleophobicity for oil-water emulsion separation[J].Surface and Coatings Technology,2020,389:125630.
55 Xie H,Chen B,Lin H,et al.Efficient oil-water emulsion treatment via novel composite membranes fabricated by Ca CO3-based biomineralization and TA-Ti(IV) coating strategy[J].Science of the Total Environment,2023,857:159183.
56 Obaid M,Mohamed H O,Alayande A B,et al.Facile fabrication of superhydrophilic and underwater superoleophobic nanofiber membranes for highly efficient separation of oil-in-water emulsion[J].Separation and Purification Technology,2021,272:118954.
57 Du C,Liu G,Qu Z,et al.GO/Ti O2-decorated electrospun polyvinylidene fluoride membrane prepared based on metal-polyphenol coordination network for oil-water separation and desalination[J].Journal of Materials Science,2022,57(5):3452-3467.
58 Tian L,Xing Y,Gao C,et al.Construction of metal polyphenol network of phytic acid-graphene oxide PESultrafiltration membranes achieving high-efficiency separation of oil-water emulsions[J].Journal of Environmental Chemical Engineering,2024,12(6):114529.
59 Wang R,Zhao X,Jia N,et al.Superwetting oil/water separation membrane constructed from in situ assembled metal-phenolic networks and metal-organic frameworks[J].ACS Applied Materials&Interfaces,2020,12(8):10000-10008.
60 Xu S,Tang Q,Li S,et al.Preparation of underwater superoleophobic ZIF-67 composite membrane with high antibacterial activity and emulsion separation efficiency[J].Journal of Environmental Chemical Engineering,2023,11(3):110078.
61 Zheng Y,Wang R,Luo W,et al.Gel-modified metal-phenolic networks membrane for emulsion separation with highly stable permeability and optimized mass transfer mode[J].Chemical Engineering Science,2025,302:120808.
62 Bai Z,Jia K,Zhang S,et al.Surface segregation‐induced superwetting separation membranes with hierarchical surface structures and internalized gel networks[J].Advanced Functional Materials,2022,32(45):2204612.
63 Wang L,Zhang R,Chen L,et al.Scalable and universal polyphenol-mediated prussian blue nanocomposite membranes:Underliquid dual superlyophobicity and catalytic self-cleaning[J].Journal of Membrane Science,2023,685:121971.
64 Yang X,Li Y,Wu D,et al.Chelation-directed interface engineering of in-place self-cleaning membranes[J].Proceedings of the National Academy of Sciences,2024,121(11):e2319390121.
65 Huyan Y,Wang J G,Tian S,et al.Assembling metal‐polyphenol coordination interfaces for longstanding zinc metal anodes[J].Eco Mat,2022,4(3):e12173.
66 Chen X,Li K,Yuan Z,et al.Metal-phenolic networks as a universal aqueous dispersing and immobilizing agent for nanocarbon materials:A facile strategy for synthesis of electronic and energy materials in the aqueous phase[J].ACS Applied Electronic Materials,2022,4(12):6149-6156.
67 Park D,Shin S,Sherrell P C,et al.Improving energy storage and nickel manganese cobalt oxide cathode lifetime via a tannic acid/iron(Ⅲ) metal phenolic network coating[J].Advanced Functional Materials,2025,35(12):2417549
68 Wang L,Li X,Xiong S,et al.Plant polyphenols induced the synthesis of rich oxygen vacancies Co3O4/Co@N-doped carbon hollow nanomaterials for electrochemical energy storage and conversion[J].Journal of Colloid and Interface Science,2021,600:58-71.
69 Luo W,Xiao G,Tian F,et al.Engineering robust metal-phenolic network membranes for uranium extraction from seawater[J].Energy&Environmental Science,2019,12(2):607-614.
70 Wang Y,Ren L,Pu Y,et al.Tannin-modified down keratin fibers to construct an all-biomass-based adsorbent for efficient uranium extraction from seawater[J].Journal of Environmental Chemical Engineering,2025,13(2):115880.
71 Lu X,Mu C,Liu Y,et al.Recent advances in solar-driven interfacial evaporation coupling systems:Energy conversion,water purification,and seawater resource extraction[J].Nano Energy,2024,120:109180.
72 Zou M,Zhang Y,Cai Z,et al.3D printing a biomimetic bridge‐arch solar evaporator for eliminating salt accumulation with desalination and agricultural applications[J].Advanced Materials,2021,33(34):2102443.
73 Peng H,Wang D,Fu S.Artificial transpiration with asymmetric photothermal textile for continuous solar-driven evaporation,spatial salt harvesting and electrokinetic power generation[J].Chemical Engineering Journal,2021,426:131818.
74 Wang L,Feng Y,Liu Q,et al.Solar-thermo-radiative evaporator for continuous steam generation and salt harvesting[J].Solar Energy,2023,250:347-354.
75 Wang Z,Gao J,Zhou J,et al.Engineering metal-phenolic networks for solar desalination with directional salt crystallization[J].Advanced Materials,2023,35(1):2209015.
76 Ding Y,Yuan Q,Ma M G,et al.Engineering metal-phenolic networks anchored cotton fabrics with boosted photothermal properties for sustainable solar desalination[J].Cellulose,2024,31(6):3893-3906.
77 Fang J,Gao J,Chen Z,et al.Synergistic photothermal enhancement of the antibacterial activity of fibroin hydrogel by dual-directional crosslink strategy for efficient solar steam generation[J].Desalination,2025,597:118355.
78 Cui H,Li S,Zhou R,et al.In situ design of metal‐phenolic networks coated layered double hydroxides S‐scheme photothermal nanoreactor for highly efficient CO2 reduction[J].Advanced Functional Materials,2025:2422347.
79 Ma J Y,Zhong Q Z,Sun X D,et al.Single-cell metal-phenolic nanocoatings protect strictly anaerobic methanogens for methane production at an atmospheric oxygen level[J].Environmental Science:Nano,2023,10(12):3379-3388.
基本信息:
DOI:10.16026/j.cnki.iea.2026020121
中图分类号:O641.3;X505
引用信息:
[1]郭佳琪,邱慧.金属-多酚网络的制备及在环境领域的应用进展[J].离子交换与吸附,2026,42(02):121-136.DOI:10.16026/j.cnki.iea.2026020121.
基金信息:
江苏省自然科学基金(项目号BK20211286)
2026-04-20
2026-04-20