Engineering superwetting membranes through polyphenol-polycation-metal complexation for high-efficient oil/water separation: From polyphenol to tailored nanostructures

被引:68
作者
Zhao, Xueting [1 ]
Wang, Ruoxi [1 ]
Lan, Youyou [1 ]
Wang, Tingyuan [1 ]
Pan, Jiefeng [1 ]
Liu, Lifen [1 ]
机构
[1] Zhejiang Univ Technol, Coll Chem Engn, 18 Chaowang Rd, Hangzhou 310014, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Superwetting membrane; Polyelectrolyte complex; Metal-phenolic networks; In situ assembly; Oil; water separation; IN-WATER EMULSIONS; SURFACE MODIFICATION; PHENOLIC NETWORKS; FABRICATION; FLUX;
D O I
10.1016/j.memsci.2021.119310
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Utilizing membrane to deal with the issues of oily wastewater discharge from the processing of petroleum or gas products, oil field exploitation and oil leakage has been widely concerned. Superwetting membrane materials have hold great promising for oil/water separation in recent years. However, a facile strategy to design superwetting membranes with specific micro- and nanostructures is still challenging. In this study, we develop superhydrophilic polycation-polyphenol-metal composite membranes via a facile in situ polyphenol assembly strategy. The assembly of polyphenol (tannic acid, TA)-polycation (polyethyleneimine, PEI) polyelectrolyte complex into nanoconjugates aims to construct a nanostructured coating, and the further complexation of metal ions (M) aims to assemble metal-phenolic networks into TA-PEI nanoconjugates. The resulting dual cross-linked TA-PEI/M composite coatings on polyvinylidene fluoride (PVDF) membrane surfaces show nanopapillae-like structures and excellent superhydrophilicity. The superhydrophilicity of the PVDF/TA-PEI/M membranes greatly promote membrane permeability by more than 100%. The superhydrophilic PVDF/TA-PEI/M membranes are also underwater superhydrophobic. The opposite wettability towards water and oil for the PVDF/TA-PEI/M membranes promises their outstanding oil/water separation efficiency (flux above 3000 L/m2h and oil rejection above 99.5%) and anti-oil-fouling performance. Moreover, the representative PVDF/TA-PEI/Ti4+ membrane also exhibits outstanding chemical and long-term stability thanks to the robust dual cross-linking. This work provides a novel and effective polyphenol-polycation-metal complexation strategy to design and fabricate superwetting membrane for oil/water separation.
引用
收藏
页数:10
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共 38 条
[1]   Facile fabrication of superhydrophobic wood slice for effective water-in-oil emulsion separation [J].
Bai, Xiangge ;
Shen, Yongqian ;
Tian, Haifeng ;
Yang, Yaoxia ;
Feng, Hua ;
Li, Jian .
SEPARATION AND PURIFICATION TECHNOLOGY, 2019, 210 :402-408
[2]   Resolving surface chemical states in XPS analysis of first row transition metals, oxides and hydroxides: Sc, Ti, V, Cu and Zn [J].
Biesinger, Mark C. ;
Lau, Leo W. M. ;
Gerson, Andrea R. ;
Smart, Roger St. C. .
APPLIED SURFACE SCIENCE, 2010, 257 (03) :887-898
[3]   Metal-organic framework membranes: Recent development in the synthesis strategies and their application in oil-water separation [J].
Deng, Yuying ;
Wu, Yanni ;
Chen, Guangquan ;
Zheng, Xilai ;
Dai, Min ;
Peng, Changsheng .
CHEMICAL ENGINEERING JOURNAL, 2021, 405
[4]   Metal-phenolic networks as a versatile platform to engineer nanomaterials and biointerfaces [J].
Ejima, Hirotaka ;
Richardson, Joseph J. ;
Caruso, Frank .
NANO TODAY, 2017, 12 :136-148
[5]   Formation and role of Cu+ species on highly dispersed CuO/SBA-15 mesoporous materials for SOx removal: An XPS study [J].
Gaudin, Pierrick ;
Fioux, Philippe ;
Dorge, Sophie ;
Nouali, Habiba ;
Vierling, Matthieu ;
Fiani, Emmanuel ;
Moliere, Michel ;
Brilhac, Jean-Francois ;
Patarin, Joel .
FUEL PROCESSING TECHNOLOGY, 2016, 153 :129-136
[6]   Engineering Multifunctional Capsules through the Assembly of Metal-Phenolic Networks [J].
Guo, Junling ;
Ping, Yuan ;
Ejima, Hirotaka ;
Alt, Karen ;
Meissner, Mirko ;
Richardson, Joseph J. ;
Yan, Yan ;
Peter, Karlheinz ;
von Elverfeldt, Dominik ;
Hagemeyer, Christoph E. ;
Caruso, Frank .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2014, 53 (22) :5546-5551
[7]   Sustaining fouling resistant membranes: Membrane fabrication, characterization and mechanism understanding of demulsification and fouling-resistance [J].
He, Bing ;
Ding, Yajie ;
Wang, Jianqiang ;
Yao, Zhikan ;
Qing, Weihua ;
Zhang, Yingjie ;
Liu, Fu ;
Tang, Chuyang Y. .
JOURNAL OF MEMBRANE SCIENCE, 2019, 581 :105-113
[8]   Antifouling membranes for oily wastewater treatment: Interplay between wetting and membrane fouling [J].
Huang, Shilin ;
Ras, Robin H. A. ;
Tian, Xuelin .
CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2018, 36 :90-109
[9]   Hydrophilic Surface Modification of DPVC Nanofibrous Membrane by Free-radical Graft Polymerization [J].
Li, Chuan ;
Wang, Heyun ;
Wu, Chunlin ;
Wei, Zhong ;
Liu, Qiang ;
Fan, Ti .
FIBERS AND POLYMERS, 2016, 17 (05) :663-670
[10]   Bio-inspired membrane with adaptable wettability for smart oil/water separation [J].
Li, Lin ;
Xu, Zhongzheng ;
Sun, Wen ;
Chen, Jia ;
Dai, Caili ;
Yan, Bin ;
Zeng, Hongbo .
JOURNAL OF MEMBRANE SCIENCE, 2020, 598