CIESC Journal ›› 2022, Vol. 73 ›› Issue (6): 2370-2380.DOI: 10.11949/0438-1157.20220138
• Reviews and monographs • Previous Articles Next Articles
Zhichao LI1,2,3(),Yu ZHENG1,2,3,Runnan ZHANG1,2,3,Zhongyi JIANG1,2,3,4()
Received:
2022-01-25
Revised:
2022-03-14
Online:
2022-06-30
Published:
2022-06-05
Contact:
Zhongyi JIANG
李智超1,2,3(),郑瑜1,2,3,张润楠1,2,3,姜忠义1,2,3,4()
通讯作者:
姜忠义
作者简介:
李智超(1998—),男,硕士研究生,基金资助:
CLC Number:
Zhichao LI, Yu ZHENG, Runnan ZHANG, Zhongyi JIANG. Research progress of high flux and antifouling graphene oxide membranes[J]. CIESC Journal, 2022, 73(6): 2370-2380.
李智超, 郑瑜, 张润楠, 姜忠义. 高通量抗污染氧化石墨烯膜研究进展[J]. 化工学报, 2022, 73(6): 2370-2380.
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1 | Chuai X W, Yuan Y, Zhao R Q, et al. High-resolution monitoring of inland water bodies across China in long time series and water resource changes[J]. Environment, Development and Sustainability, 2021, 23(3): 3673-3695. |
2 | 郑根江. 中国膜产业发展状况与展望[J]. 水处理技术, 2020, 46(6): 1-3. |
Zheng G J. Development status and prospect of membrane industry in China[J]. Technology of Water Treatment, 2020, 46(6): 1-3. | |
3 | 生态环境部. 2020年中国生态环境状况公报(摘录)[J]. 环境保护, 2021, 49(11): 47-68. |
The Ministry of Ecology and Environment. China ecological environment status bulletin 2020 (excerpt)[J]. Environmental Protection, 2021, 49(11): 47-68. | |
4 | Yue X J, Li Z D, Zhang T, et al. Design and fabrication of superwetting fiber-based membranes for oil/water separation applications[J]. Chemical Engineering Journal, 2019, 364: 292-309. |
5 | Fakhru'l-Razi A, Pendashteh A, Abdullah L C, et al. Review of technologies for oil and gas produced water treatment[J]. Journal of Hazardous Materials, 2009, 170(2/3): 530-551. |
6 | Zhang X R, Ma J X, Zheng J J, et al. Recent advances in nature-inspired antifouling membranes for water purification[J]. Chemical Engineering Journal, 2022, 432: 134425. |
7 | Shannon M A, Bohn P W, Elimelech M, et al. Science and technology for water purification in the coming decades [J]. Nature, 2008, 452(7185): 301-310. |
8 | Su P C, Wang F, Li Z J, et al. Graphene oxide membranes: controlling their transport pathways[J]. Journal of Materials Chemistry A, 2020, 8(31): 15319-15340. |
9 | 张鹏, 陈赞, 吴洪, 等. 石墨烯基CO2分离膜通道微环境调控研究进展[J]. 化工学报, 2020, 71(1): 54-67. |
Zhang P, Chen Z, Wu H, et al. Progress in research on channel microenvironment regulation of graphenebased CO2 separation membrane[J]. CIESC Journal, 2020, 71(1): 54-67. | |
10 | Wang H J, Wang M D, Liang X, et al. Organic molecular sieve membranes for chemical separations[J]. Chemical Society Reviews, 2021, 50(9): 5468-5516. |
11 | 王绍宇, 马翰泽, 吴洪, 等. 有机框架膜在气体分离中的研究进展[J]. 化工学报, 2021, 72(7): 3488-3510. |
Wang S Y, Ma H Z, Wu H, et al. Research advances of organic framework membranes in gas separation[J]. CIESC Journal, 2021, 72(7): 3488-3510. | |
12 | Yuan S S, Li X, Zhu J Y, et al. Covalent organic frameworks for membrane separation[J]. Chemical Society Reviews, 2019, 48(10): 2665-2681. |
13 | Han X T, Guo Z G. Graphene and its derivative composite materials with special wettability: potential application in oil-water separation[J]. Carbon, 2021, 172: 647-681. |
14 | Chen X, Wang H. Graphene oxide patchwork membranes [J]. Nature Nanotechnology, 2021, 16(3): 226-227. |
15 | Liu Y N, Su Y L, Guan J L, et al. 2D heterostructure membranes with sunlight-driven self-cleaning ability for highly efficient oil-water separation[J]. Advanced Functional Materials, 2018, 28(13): 1706545. |
16 | Han Y, Jiang Y Q, Gao C. High-flux graphene oxide nanofiltration membrane intercalated by carbon nanotubes[J]. ACS Applied Materials & Interfaces, 2015, 7(15): 8147-8155. |
17 | Chen L, Shi G, Shen J, et al. Ion sieving in graphene oxide membranes via cationic control of interlayer spacing [J]. Nature, 2017, 550(7676): 380-383. |
18 | Wang L, Wang N X, Li J, et al. Layer-by-layer self-assembly of polycation/GO nanofiltration membrane with enhanced stability and fouling resistance[J]. Separation and Purification Technology, 2016, 160: 123-131. |
19 | Wang Y R, Zhang W, Zeng X J, et al. Membranes for separation of alkali/alkaline earth metal ions: a review[J]. Separation and Purification Technology, 2022, 278: 119640. |
20 | Yang J J, Gong D, Li G H, et al. Self-assembly of thiourea-crosslinked graphene oxide framework membranes toward separation of small molecules[J]. Advanced Materials, 2018, 30(16): e1705775. |
21 | Zhang Z, Xiao X, Zhou Y, et al. Bioinspired graphene oxide membranes with pH-responsive nanochannels for high-performance nanofiltration[J]. ACS Nano, 2021,15(8): 13178-13187. |
22 | Zhang M C, Guan K C, Shen J, et al. Nanoparticles@rGO membrane enabling highly enhanced water permeability and structural stability with preserved selectivity[J]. AIChE Journal, 2017, 63(11): 5054-5063. |
23 | Goh K, Jiang W C, Karahan H E, et al. All-carbon nanoarchitectures as high-performance separation membranes with superior stability[J]. Advanced Functional Materials, 2015, 25(47): 7348-7359. |
24 | Kong G D, Pang J, Tang Y C, et al. Efficient dye nanofiltration of a graphene oxide membrane via combination with a covalent organic framework by hot pressing[J]. Journal of Materials Chemistry A, 2019, 7(42): 24301-24310. |
25 | Wu T, Wang Z, Lu Y X, et al. Graphene oxide membranes for tunable ion sieving in acidic radioactive waste[J]. Advanced Science, 2021, 8(7): 2002717. |
26 | Bang K R, Bahamon D, Vega L F, et al. Synergetic effect of physicochemical and electrostatic strategies on ion sieving for polymer cross-linked graphene oxide membranes[J]. Environmental Science: Nano, 2021, 8(11): 3312-3321. |
27 | Ansari A, Peña-Bahamonde J, Wang M, et al. Polyacrylic acid-brushes tethered to graphene oxide membrane coating for scaling and biofouling mitigation on reverse osmosis membranes[J]. Journal of Membrane Science, 2021, 630: 119308. |
28 | Andreeva D V, Trushin M, Nikitina A, et al. Two-dimensional adaptive membranes with programmable water and ionic channels [J]. Nature Nanotechnology, 2021, 16(2): 174-180. |
29 | Hu J Y, Li M, Wang L J, et al. Polymer brush-modified graphene oxide membrane with excellent structural stability for effective fractionation of textile wastewater[J]. Journal of Membrane Science, 2021, 618: 118698. |
30 | Kumar M, Baniowda H M, Sreedhar N, et al. Fouling resistant, high flux, charge tunable hybrid ultrafiltration membranes using polymer chains grafted graphene oxide for NOM removal[J]. Chemical Engineering Journal, 2021, 408: 127300. |
31 | Chen X F, Mohammed S, Yang G, et al. Selective permeation of water through angstrom-channel graphene membranes for bioethanol concentration[J]. Advanced Materials, 2020, 32(33): e2002320. |
32 | Huang Q, Zhang S C, Li X X, et al. Intelligent graphene oxide membranes with pH tunable channels for water treatment[J]. Chemical Engineering Journal, 2022, 431: 133462. |
33 | Chen T, Butt F S, Zhang M, et al. Ultra-permeable zeolitic imidazolate frameworks-intercalated graphene oxide membranes for unprecedented ultrafast molecular separation[J]. Chemical Engineering Journal, 2021, 419: 129507. |
34 | Zhang W H, Yin M J, Zhao Q, et al. Graphene oxide membranes with stable porous structure for ultrafast water transport [J]. Nature Nanotechnology, 2021, 16(3): 337-343. |
35 | Chen L, Li N, Wen Z Y, et al. Graphene oxide based membrane intercalated by nanoparticles for high performance nanofiltration application[J]. Chemical Engineering Journal, 2018, 347: 12-18. |
36 | Dong L L, Li M H, Zhang S, et al. NH2-Fe3O4-regulated graphene oxide membranes with well-defined laminar nanochannels for desalination of dye solutions[J]. Desalination, 2020, 476: 114227. |
37 | Han S T, Li W Y, Xi H L, et al. Plasma-assisted in situ preparation of graphene-Ag nanofiltration membranes for efficient removal of heavy metal ions[J]. Journal of Hazardous Materials, 2022, 423: 127012. |
38 | Liu G G, Han K, Ye H Q, et al. Graphene oxide/triethanolamine modified titanate nanowires as photocatalytic membrane for water treatment[J]. Chemical Engineering Journal, 2017, 320: 74-80. |
39 | Zhao X T, Su Y L, Liu Y N, et al. Free-standing graphene oxide-palygorskite nanohybrid membrane for oil/water separation[J]. ACS Applied Materials & Interfaces, 2016, 8(12): 8247-8256. |
40 | Shao L Y, Yu Z X, Li X H, et al. One-step preparation of sepiolite/graphene oxide membrane for multifunctional oil-in-water emulsions separation[J]. Applied Clay Science, 2019, 181: 105208. |
41 | Gao S J, Qin H L, Liu P P, et al. SWCNT-intercalated GO ultrathin films for ultrafast separation of molecules[J]. Journal of Materials Chemistry A, 2015, 3(12): 6649-6654. |
42 | Wei Y B, Zhu Y X, Jiang Y J. Photocatalytic self-cleaning carbon nitride nanotube intercalated reduced graphene oxide membranes for enhanced water purification[J]. Chemical Engineering Journal, 2019, 356: 915-925. |
43 | Ma Y, Su Y L, He M R, et al. Graphene oxide membranes with conical nanochannels for ultrafast water transport[J]. ACS Applied Materials & Interfaces, 2018, 10(43): 37489-37497. |
44 | Sui X, Yuan Z W, Liu C, et al. Graphene oxide laminates intercalated with 2D covalent-organic frameworks as a robust nanofiltration membrane[J]. Journal of Materials Chemistry A, 2020, 8(19): 9713-9725. |
45 | Ma J, Tang X D, He Y, et al. Robust stable MoS2/GO filtration membrane for effective removal of dyes and salts from water with enhanced permeability[J]. Desalination, 2020, 480: 114328. |
46 | Khan N A, Yuan J Q, Wu H, et al. Mixed nanosheet membranes assembled from chemically grafted graphene oxide and covalent organic frameworks for ultra-high water flux[J]. ACS Applied Materials & Interfaces, 2019, 11(32): 28978-28986. |
47 | Zhao H X, Chen S, Quan X, et al. Integration of microfiltration and visible-light-driven photocatalysis on g-C3N4 nanosheet/reduced graphene oxide membrane for enhanced water treatment[J]. Applied Catalysis B: Environmental, 2016, 194: 134-140. |
48 | Hou R T, He Y, Yu H, et al. Intercalation of N-doped graphene into graphene oxide-based membranes to improve their overall nanofiltration performance[J]. Chemical Physics Letters, 2021, 775: 138657. |
49 | Liu Y N, Guan J Y, Su Y L, et al. Graphene oxide membranes with an ultra-large interlayer distance through vertically grown covalent organic framework nanosheets[J]. Journal of Materials Chemistry A, 2019, 7(44): 25458-25466. |
50 | Liu M, Weston P J, Hurt R H. Controlling nanochannel orientation and dimensions in graphene-based nanofluidic membranes [J]. Nature Communicatjions, 2021, 12(1): 507. |
51 | Liu T, Zhang R Q, Chen M W, et al. Vertically aligned polyamidoxime/graphene oxide hybrid sheets' membrane for ultrafast and selective extraction of uranium from seawater[J]. Advanced Functional Materials, 2021: 2111049. |
52 | He M R, Zhang R N, Zhang K, et al. Reduced graphene oxide aerogel membranes fabricated through hydrogen bond mediation for highly efficient oil/water separation[J]. Journal of Materials Chemistry A, 2019, 7(18): 11468-11477. |
53 | Narayan R, Kim J E, Kim J Y, et al. Graphene oxide liquid crystals: discovery, evolution and applications[J]. Advanced Materials, 2016, 28(16): 3045-3068. |
54 | Yao B W, Chen J, Huang L, et al. Base-induced liquid crystals of graphene oxide for preparing elastic graphene foams with long-range ordered microstructures[J]. Advanced Materials, 2016, 28(8): 1623-1629. |
55 | Sun Z X, Fang S Y, Hu Y H. 3D graphene materials: from understanding to design and synthesis control[J]. Chemical Reviews, 2020, 120(18): 10336-10453. |
56 | Zhang R N, Liu Y N, He M R, et al. Antifouling membranes for sustainable water purification: strategies and mechanisms[J]. Chemical Society Reviews, 2016, 45(21): 5888-5924. |
57 | Zhang Q, Chen S, Fan X F, et al. A multifunctional graphene-based nanofiltration membrane under photo-assistance for enhanced water treatment based on layer-by-layer sieving[J]. Applied Catalysis B: Environmental, 2018, 224: 204-213. |
58 | Sun J Q, Hu C Z, Wu B C, et al. Fouling mitigation of a graphene hydrogel membrane electrode by electrical repulsion and in situ self-cleaning in an electro-membrane reactor[J]. Chemical Engineering Journal, 2020, 393: 124817. |
59 | Yang E, Alayande A B, Kim C M, et al. Laminar reduced graphene oxide membrane modified with silver nanoparticle-polydopamine for water/ion separation and biofouling resistance enhancement[J]. Desalination, 2018, 426: 21-31. |
60 | Huang Y, Zhu G, Zou K, et al. Highly efficient removal of organic pollutants from wastewater using a recyclable graphene oxide membrane intercalated with g-C3N4@TiO2-nanowires[J]. Journal of Molecular Liquids, 2021, 337: 116461. |
61 | Ma H R, Wang G L, Xu Z H, et al. Confining peroxymonosulfate activation in carbon nanotube intercalated nitrogen doped reduced graphene oxide membrane for enhanced water treatment: the role of nanoconfinement effect[J]. Journal of Colloid and Interface Science, 2022, 608: 2740-2751. |
62 | Cai Y H, Chen D Y, Li N J, et al. A self-cleaning heterostructured membrane for efficient oil-in-water emulsion separation with stable flux[J]. Advanced Materials, 2020, 32(25): 2001265. |
63 | Yu Z X, Zeng H J, Min X, et al. High-performance composite photocatalytic membrane based on titanium dioxide nanowire/graphene oxide for water treatment[J]. Journal of Applied Polymer Science, 2020, 137(12): 48488. |
64 | Zhu C Y, Liu G G, Han K, et al. One-step facile synthesis of graphene oxide/TiO2 composite as efficient photocatalytic membrane for water treatment: crossflow filtration operation and membrane fouling analysis[J]. Chemical Engineering and Processing - Process Intensification, 2017, 120: 20-26. |
65 | Xie A T, Cui J Y, Yang J, et al. Graphene oxide/Fe(Ⅲ)-based metal-organic framework membrane for enhanced water purification based on synergistic separation and photo-Fenton processes[J]. Applied Catalysis B: Environmental, 2020, 264: 118548. |
66 | Ho K C, Teow Y H, Mohammad A W, et al. Development of graphene oxide (GO)/multi-walled carbon nanotubes (MWCNTs) nanocomposite conductive membranes for electrically enhanced fouling mitigation[J]. Journal of Membrane Science, 2018, 552: 189-201. |
67 | Wei G L, Zhao Y S, Dong J, et al. Electrochemical cleaning of fouled laminar graphene membranes[J]. Environmental Science & Technology Letters, 2020, 7(10): 773-778. |
68 | Valizadeh S, Naji L L, Karimi M. Controlling interlayer spacing of graphene oxide membrane in aqueous media using a biocompatible heterobifunctional crosslinker for penicillin-G procaine removal[J]. Separation and Purification Technology, 2021, 263: 118392. |
69 | Wang M, Wang J, Jiang J W. Membrane fouling: microscopic insights into the effects of surface chemistry and roughness[J]. Advanced Theory and Simulations, 2022, 5(1): 2100395. |
70 | Wei G L, Dong J, Bai J, et al. Structurally stable, antifouling, and easily renewable reduced graphene oxide membrane with a carbon nanotube protective layer[J]. Environmental Science & Technology, 2019, 53(20): 11896-11903. |
71 | Feng L D, Gao Y, Xu Y, et al. A dual-functional layer modified GO@SiO2 membrane with excellent anti-fouling performance for continuous separation of oil-in-water emulsion[J]. Journal of Hazardous Materials, 2021, 420: 126681. |
72 | Han J L, Zhang D P, Jiang W R, et al. Tuning the functional groups of a graphene oxide membrane by ·OH contributes to the nearly complete prevention of membrane fouling[J]. Journal of Membrane Science, 2019, 576: 190-197. |
73 | Han J L, Haider M R, Liu M J, et al. Borate inorganic cross-linked durable graphene oxide membrane preparation and membrane fouling control[J]. Environmental Science & Technology, 2019, 53(3): 1501-1508. |
74 | Huang T F, Zhang L, Chen H L, et al. Sol-gel fabrication of a non-laminated graphene oxide membrane for oil/water separation[J]. Journal of Materials Chemistry A, 2015, 3(38): 19517-19524. |
75 | Ma G Y, Xu X S, Tesfai M, et al. Nanocomposite cation-exchange membranes for wastewater electrodialysis: organic fouling, desalination performance, and toxicity testing[J]. Separation and Purification Technology, 2021, 275: 119217. |
76 | Zhao X T, Su Y L, Cao J L, et al. Fabrication of antifouling polymer-inorganic hybrid membranes through the synergy of biomimetic mineralization and nonsolvent induced phase separation[J]. Journal of Materials Chemistry A, 2015, 3(14): 7287-7295. |
77 | Lee B, Suh D W, Hong S P, et al. A surface-modified EDTA-reduced graphene oxide membrane for nanofiltration and anti-biofouling prepared by plasma post-treatment[J]. Environmental Science: Nano, 2019, 6(7): 2292-2298. |
78 | Wang J, Gao X L, Yu H, et al. Accessing of graphene oxide (GO) nanofiltration membranes for microbial and fouling resistance[J]. Separation and Purification Technology, 2019, 215: 91-101. |
79 | Liu S B, Zeng T H, Hofmann M, et al. Antibacterial activity of graphite, graphite oxide, graphene oxide, and reduced graphene oxide: membrane and oxidative stress[J]. ACS Nano, 2011, 5(9): 6971-6980. |
80 | López-Cázares M I, Pérez-Rodríguez F, Rangel-Méndez J R, et al. Improved conductivity and anti(bio)fouling of cation exchange membranes by AgNPs-GO nanocomposites[J]. Journal of Membrane Science, 2018, 565: 463-479. |
81 | Li M, Hu J Y, Li B, et al. Graphene oxide nanofiltration membrane with trimethylamine-N-oxide zwitterions for robust biofouling resistance[J]. Journal of Membrane Science, 2021, 640: 119855. |
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