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1..浙江理工大学,浙江省纤维材料和加工技术研究重点实验室,先进纺织材料与制备技术教育部重点实验室,杭州 310018
2..国家先进印染技术创新中心,泰安 271000
3..浙江省现代纺织技术创新中心,绍兴 312000
Published:2024-06,
Received:06 November 2023,
Accepted:09 December 2023
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郑雅心, 孙菲, 刘高峰, 刘国金. 纳米纤维基膜材料在油水分离中的研究进展. 高分子通报, 2024, 37(6), 757–765
Zheng, Y. X.; Sun, F.; Liu, G. F.; Liu, G. J. Research progress of nanofiber-based membrane materials in oil-water separation. Polym. Bull. (in Chinese), 2024, 37(6), 757–765
郑雅心, 孙菲, 刘高峰, 刘国金. 纳米纤维基膜材料在油水分离中的研究进展. 高分子通报, 2024, 37(6), 757–765 DOI: 10.14028/j.cnki.1003-3726.2024.23.375.
Zheng, Y. X.; Sun, F.; Liu, G. F.; Liu, G. J. Research progress of nanofiber-based membrane materials in oil-water separation. Polym. Bull. (in Chinese), 2024, 37(6), 757–765 DOI: 10.14028/j.cnki.1003-3726.2024.23.375.
油水分离静电纺丝纳米纤维膜超疏水亲水-水下疏油
Oil-water separationElectrospinningNanofiber membraneSuperhydrophobicHydrophilic-underwater oleophobic
Hu, X. D.; Zhang, S. S.; Yang, B.; Hao, M.; Chen, Z. J.; Liu, Y. B.; Ramakrishna, S.; Wang, X. X.; Yao, J. B.Bacterial cellulose composite aerogel with high elasticity and adjustable wettability for dye absorption and oil-water separation. Appl. Surf. Sci., 2023, 640, 158299.
Liu, Y. N.; Hao, M.; Chen, Z. J.; Ramakrishna, S.; Liu, Y. B.; Wang, X. X.; Hu, X. D.; Wei, Y.Recent advances in the development of nanofiber-based aerogel for oil-water separation: a review. Fuel, 2023, 354, 129338.
Wang, H.; Wang, F.; Li, Z. C.; Zheng, Y.; Gu, T. R.; Zhang, R. N.; Jiang, Z. Y.In situ reaction enabled surface segregation toward dual-heterogeneous anti-fouling membranes for oil-water separation. J. Hazard. Mater., 2023, 460, 132425.
Akthakul, A.; McDonald, W. F.; Mayes, A. M.Noncircular pores on the surface of asymmetric polymer membranes: evidence of pore formation via spinodal demixing. J. Membr. Sci., 2002, 208(1-2), 147–155.
Cheng, X.; Li, T.; Yan, L.; Jiao, Y.; Zhang, Y.; Wang, K.; Cheng, Z.; Ma, J.; Shao, L.Biodegradable electrospinning superhydrophilic nanofiber membranes for ultrafast oil-water separation. Sci. Adv., 2023, 9(34), eadh8195.
Xing, W.; Wang, Y. X.; Mao, X. H.; Gao, Z. Y.; Yan, X. H.; Yuan, Y. R.; Huang, L. J.; Tang, J. G.Improvement strategies for oil/water separation based on electrospun SiO2 nanofibers. J. Colloid Interface Sci., 2024, 653, 1600–1619.
Liu, M. J.; Wang, S. T.; Jiang, L.Nature-inspired super-wettability systems. Nat. Rev. Mater., 2017, 2(7), 17036.
Young, T.An essay on the cohesion of fluids. Proc. R. Soc. Lond., 1832, 1, 171–172.
Tian, Y.; Jiang, L.Design of bioinspired, smart, multiscale interfacial materials with superwettability. MRS Bull., 2015, 40(2), 155–165.
Wenzel, R. N.Resistance of solid surfaces to wetting by water. Ind. Eng. Chem., 1936, 28(8), 988–994.
Cassie, A. B. D.; Baxter, S.Wettability of porous surfaces. Trans. Faraday Soc., 1944, 40(0), 546–551.
Zhu, Y. Z.; Wang, J. L.; Zhang, F.; Gao, S. J.; Wang, A. Q.; Fang, W. X.; Jin, J.Zwitterionic nanohydrogel grafted PVDF membranes with comprehensive antifouling property and superior cycle stability for oil-in-water emulsion separation. Adv. Funct. Mater., 2018, 28(40), 1804121.
Chen, C. L.; Weng, D.; Mahmood, A.; Chen, S.; Wang, J. D.Separation mechanism and construction of surfaces with special wettability for oil/water separation. ACS Appl. Mater. Interfaces, 2019, 11(11), 11006–11027.
Baig, U.; Faizan, M.; Dastageer, M. A.Polyimide based super-wettable membranes/materials for high performance oil/water mixture and emulsion separation: a review. Adv. Colloid Interface Sci., 2021, 297, 102525.
Hare, E. F.; Shafrin, E. G.; Zisman, W. A.Properties of films of adsorbed fluorinated acids. J. Phys. Chem., 1954, 58(3), 236–239.
Zhou, W.; Yu, J. Y.; Zhang, S. C.; Ding, B.Direct electrospinning of fluorine-free waterproof polyamide/polydimethylsiloxane nanofibrous membranes with highly breathable performance. Compos. Commun., 2022, 35, 101337.
Chen, W.; Wang, H. H.; Lan, W.; Zhang, A. P.; Liu, C. F.Fabrication of sugarcane bagasse ester-based porous nanofiber membrane by electrospinning for efficient oil-water separation. Ind. Crops Prod., 2022, 187, 115480.
Yao, X. Y.; Hou, X. B.; Qi, G. C.; Zhang, R. B.Preparation of superhydrophobic polyimide fibrous membranes with controllable surface structure for high efficient oil-water emulsion and heavy oil separation. J. Environ. Chem. Eng., 2022, 10(3), 107470.
Huang, Y.; Xiao, C. F.; Huang, Q. L.; Liu, H. L.; Guo, Z.; Sun, K. X.Robust preparation of tubular PTFE/FEP ultrafine fibers-covered porous membrane by electrospinning for continuous highly effective oil/water separation. J. Membr. Sci., 2018, 568, 87–96.
Feng, S. Z.; Luo, W. X.; Wang, L. X.; Zhang, S.; Guo, N. N.; Xu, M. J.; Zhao, Z. B.; Jia, D. Z.; Wang, X. C.; Jia, L. X.Preparation and property of extremely stable superhydrophobic carbon fibers with core-shell structure. Carbon, 2019, 150, 284–291.
Fu, C.; Shen, L. L.; Liu, L. Q.; Tao, P.; Zhu, L. J.; Zeng, Z. X.; Ren, T. H.; Wang, G.Hydrogel with robust adhesion in various liquid environments by electrostatic-induced hydrophilic and hydrophobic polymer chains migration and rearrangement. Adv. Mater., 2023, 35(15), e2211237.
Shao, W. L.; Liu, S. M.; Wang, K.; Niu, J. Y.; Zhu, L.; Zhu, S. L.; Ren, G. H.; Wang, X.; Cao, Y.; Zhang, H.; Wang, Y. W.; Sun, X. Y.; Liu, F.; He, J. X.Using modified raw materials to fabricate electrospun, superhydrophobic poly(lactic acid) multiscale nanofi-brous membranes for air-filtration applications. Sep. Purif. Technol., 2024, 333, 125872.
Korkut, I.; Aydin, E. S.Electrospun PAN-PS membranes with improved hydrophobic properties for high-performance oil/water separation. Sep. Purif. Technol., 2024, 331, 125590.
Oh, S.; Bang, J.; Jin, H. J.; Kwak, H. W.Green fabrication of underwater superoleophobic biopolymeric nanofibrous membranes for effective oil-water separation. Adv. Fiber Mater., 2023, 5(2), 603–616.
Deng, Y. Y.; Bian, H. Z.; Dai, M.; Liu, X.; Peng, C. S.Underwater superoleophobic HKUST-1/PDA@SM membrane with excellent stability and anti-fouling performance for oil-in-water emulsion separation. J. Membr. Sci., 2023, 678, 121655.
徐兰芳, 王锋, 于英豪, 涂伟萍. 超亲水/水下超疏油膜功能材料及其研究进展. 材料导报, 2020, 34(17), 17105–17114.
Hong, S. K.; Bae, S.; Jeon, H.; Kim, M.; Cho, S. J.; Lim, G.An underwater superoleophobic nanofibrous cellulosic membrane for oil/water separation with high separation flux and high chemical stability. Nanoscale, 2018, 10(6), 3037–3045.
许飞, 尤蒙, 张树友, 王华, 孟建强. 聚偏氟乙烯接枝共聚物纤维膜的制备及油水分离研究. 膜科学与技术, 2022, 42(1), 88–97.
Mészáros, R.; Nagy, M.; Varga, I.; László, K.Nonequilibrium aspects of adsorption from a dilute aqueous solution of 1-propanol onto activated carbon: interrelation between the sorbent “concentration” effect and metastability. Langmuir, 1999, 15(4), 1307–1312.
Qing, W. H.; Li, X. H.; Wu, Y. F.; Shao, S. L.; Guo, H.; Yao, Z. K.; Chen, Y. L.; Zhang, W.; Tang, C. Y.In situ silica growth for superhydrophilic-underwater superoleophobic silica/PVA nanofibrous membrane for gravity-driven oil-in-water emulsion separation. J. Membr. Sci., 2020, 612, 118476.
Jin, Y. T.; Huang, L. W.; Zheng, K.; Zhou, S. Q.Blending electrostatic spinning fabrication of super-hydrophilic/underwater superoleophobic polysulfona-mide/polyvinylpyrrolidone nanofibrous membranes for efficient oil-water emulsion separation. Langmuir, 2022, 38(27), 8241–8251.
Gan, S. P.; Li, H.; Zhu, X.; Liu, X. L.; Wei, K. X.; Zhu, L.; Wei, B. J.; Luo, X. M.; Zhang, J. Q.; Xue, Q. Z.Constructing scalable membrane with tunable wettability by electrolysis-induced interface pH for oil-water separation. Adv. Funct. Mater., 2023, 33(50), 2305975.
Zhao, Z. Q.; Dong, J. H.; Dong, W. H.; Wang, L. L.; Wang, P.; Zhou, Y. Q.; Li, H. X.; Liu, Q. S.; Deng, B. Y.; Li, D. W.PI nanofiber membranes with pH-responsive wettability fabricated through solution blow spinning for efficient on-demand oil-water separation. J. Environ. Chem. Eng., 2023, 11(6), 111565.
Cai, L.; Dai, Y. M.; Fang, C. Q.; Wang, Z. H.; Li, Y. Q.; Yang, S. W.; Wang, J. L.; Liu, B.; Ding, X. L.; Zhang, Y. F.; Li, Y.; Wan, L.Novel photothermal response intelligent polyurethane sponge with switching wettability for oil/water separation. J. Mol. Liq., 2023, 386, 122549.
Dutta, K.; De, S.Smart responsive materials for water purification: an overview. J. Mater. Chem. A, 2017, 5(42), 22095–22112.
Liao, Q.; He, M.; Zhou, Y. M.; Nie, S. X.; Wang, Y. J.; Hu, S. C.; Yang, H. Y.; Li, H. F.; Tong, Y.Highly cuboid-shaped heterobimetallic metal-organic frameworks derived from porous Co/ZnO/C microrods with improved electromagnetic wave absorption capabilities. ACS Appl. Mater. Interfaces, 2018, 10(34), 29136–29144.
Dou, Y. L.; Yue, X.; Lv, C. J.; Yasin, A.; Hao, B.; Su, Y. H.; Ma, P. C.Dual-responsive polyacrylonitrile-based electrospun membrane for controllable oil-water separation. J. Hazard. Mater., 2022, 438, 129565.
Li, J. J.; Zhou, Y. N.; Luo, Z. H.Smart fiber membrane for pH-induced oil/water separation. ACS Appl. Mater. Interfaces, 2015, 7(35), 19643–19650.
Zeng, X. J.; Cai, W. C.; Fu, S. Y.; Lin, X. M.; Lu, Q. R.; Liao, S.; Hu, H. W.; Zhang, M.; Zhou, C. L.; Wen, X. F.; Tan, S. Z.A novel Janus sponge fabricated by a green strategy for simultaneous separation of oil/water emulsions and dye contaminants. J. Hazard. Mater., 2022, 424, 127543.
Zhang, W. F.; Qu, R. X.; Li, X. Y.; Liu, Y. N.; Wei, Y.; Feng, L.A dual functional Janus membrane combining superwettability with electrostatic force for controllable anionic/cationic emulsion separation and in situ surfactant removal. J. Mater. Chem. A, 2019, 7(47), 27156–27163.
Qiu, L.; Zhang, J. X.; Guo, Z. G.; Liu, W. M.Asymmetric superwetting stainless steel meshes for on-demand and highly effective oil-water emulsion separation. Sep. Purif. Technol., 2021, 273, 118994.
Qin, Y.; Shen, H.; Han, L.; Zhu, Z. M.; Pan, F.; Yang, S. W.; Yin, X. Z.Mechanically robust Janus poly(lactic acid) hybrid fibrous membranes toward highly efficient switchable separation of surfactant-stabilized oil/water emulsions. ACS Appl. Mater. Interfaces, 2020, 12(45), 50879–50888.
Jiang, Y. S.; Hou, J. W.; Xu, J.; Shan, B. T.Switchable oil/water separation with efficient and robust Janus nanofiber membranes. Carbon, 2017, 115, 477–485.
Meng, L. J.; Shi, W.; Li, Y.; Li, X. S.; Tong, X.; Wang, Z. W.Janus membranes at the water-energy nexus: a critical review. Adv. Colloid Interface Sci., 2023, 318, 102937.
Huang, T. F.; Su, Z. X.; Hou, K.; Zeng, J. X.; Zhou, H.; Zhang, L.; Nunes, S. P.Advanced stimuli-responsive membranes for smart separation. Chem. Soc. Rev., 2023, 52(13), 4173–4207.
Wang, X. P.; Liu, W.; Huang, Q. L.Simultaneously demulsification and coalescence deoiling of O/W emulsion by a zeolite composite material. Chem. Eng. Process., 2020, 153, 107954.
Wang, Y. W.; Liu, X. Y.; He, Q. D.; Wang, X.; Lu, H.; Guo, F.; Zhang, Y. J.; Wang, W. B.Multifunctional natural sepiolite nanofibre composite demulsifiers for efficient purification of oils and dyes in simulated and actual wastewater. Sep. Purif. Technol., 2022, 290, 120865.
Baig, U.; Faizan, M.; Dastageer, M. A.; Gondal, M. A.Customization of surface wettability of nano-SiO2 by coating trimethoxy(vinyl)silane modifier for oil-water separation: fabrication of metal-based functional superwetting nanomaterial, characterizations and performance evaluation. Chemosphere, 2022, 308(Pt 3), 136405.
丁琳, 王鹏翔, 刘浩, 熊谟鹏, 王慧凌. 功能化金属-有机框架材料吸附去除废水中铅离子的研究进展. 材料导报, 2022, 36(20), 40–50.
Xu, B.; Wang, X. B.; Huang, Y. Y.; Liu, J.; Wang, D.; Feng, S. J.; Huang, X. H.; Wang, H. T.Electrospinning preparation of PAN/TiO2/PANI hybrid fiber membrane with highly selective adsorption and photocatalytic regeneration properties. Chem. Eng. J., 2020, 399, 125749.
葛森岳, 王纯, 郑文丽, 付梦洁, 肖长发. 聚合物/金属有机骨架复合膜制备方法及特种分离应用进展. 高分子材料科学与工程, 2023, 39(2), 177–183.
Sun, Q.; Du, J. C.; Wang, L. H.; Yao, A. Y.; Song, Z. Y.; Liu, L. H.; Cao, D.; Ma, J.; Lim, W.; He, W.; Ul Hassan, S.; Zhou, C. L.; Liu, J. T.Smart superwetting COF membrane for controllable oil/water separation. Sep. Purif. Technol., 2023, 317, 123825.
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