Preparation of polysulfone-based block copolymer ultrafiltration membranes by selective swelling and sacrificing nanofillers

被引:0
作者
Shanshan Zhang
Jiemei Zhou
Zhaogen Wang
Jianzhong Xia
Yong Wang
机构
[1] Nanjing Tech University,State Key Laboratory of Materials
[2] Shenzhen University,Oriented Chemical Engineering, College of Chemical Engineering
[3] Beijing OriginWater Membrane Technology Co.,Institute for Advanced Study
[4] Ltd.,undefined
来源
Frontiers of Chemical Science and Engineering | 2022年 / 16卷
关键词
block copolymers; selective swelling ultrafiltration; CaCO; nanoparticles; sacrificial nanofillers;
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学科分类号
摘要
Selective swelling of block copolymers of polysulfone-b-poly(ethylene glycol) is an emerging strategy to prepare new types of polysulfone ultrafiltration membranes. Herein, we prepared nanoporous polysulfone-b-poly(ethylene glycol) ultrafiltration membranes by selective swelling and further promoted their porosity and ultrafiltration performances by using CaCO3 nanoparticles as the sacrificial nanofillers. Different contents of CaCO3 nanoparticles were doped into the solution of polysulfone-b-poly(ethylene glycol), and thus obtained suspensions were used to prepare both self-supported and bi-layered composite structures. Selective swelling was performed on the obtained block copolymer structures in the solvent pair of ethanol/acetone, producing nanoporous membranes with poly(ethylene glycol) lined along pore walls. The CaCO3 nanoparticles dispersed in polysulfone-b-poly(ethylene glycol) were subsequently etched away by hydrochloric acid and the spaces initially occupied by CaCO3 provided extra pores to the block copolymer layers. The porosity of the membranes was increased with increasing CaCO3 content up to 41%, but further increase in the CaCO3 content led to partial collapse of the membrane. The sacrificial CaCO3 particles provided extra pores and enhanced the connectivity between adjacent pores. Consequently, the membranes prepared under optimized conditions exhibited up to 80% increase in water permeance with slight decrease in rejection compared to neat membranes without the use of sacrificial CaCO3 particles.
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页码:745 / 754
页数:9
相关论文
共 163 条
[1]  
Amanda A(2000)Semicrystalline poly(vinyl alcohol) ultrafiltrationmembranes for bioseparations Journal of Membrane Science 176 87-95
[2]  
Kulprathipanja A(2016)Membrane materials for water purification: design, development, and application. Environmental Science Water Research & Technology 2 17-42
[3]  
Toennesen M(2020)Membrane technologies assisting plant-based and agro-food byproducts processing: a comprehensive review Trends in Food Science & Technology 95 219-232
[4]  
Mallapragada S K(2020)Synthesis and characterization of ultrafiltration ceramic membranes used in the separation of macromolecular proteins Journal of the European Ceramic Society 40 5967-5973
[5]  
Lee A(2017)Single stage ultrafiltration for enhanced reverse selectivity in a binary protein system Separation Science and Technology 52 2161-2172
[6]  
Elam J W(2006)Polysulfone-graft-poly(ethylene glycol) graft copolymers for surface modification of polysulfone membranes Biomaterials 27 856-865
[7]  
Darling S B(2007)The influence of nano-sized TiO Journal of Membrane Science 288 231-238
[8]  
Castro-Muñoz R(2009) fillers on the morphologies and properties of PSF UF membrane Water Research 43 715-723
[9]  
Boczkaj G(2010)Polysulfone ultrafiltration membranes impregnated with silver nanoparticles show improved biofouling resistance and virus removal Chemical Reviews 110 2448-2471
[10]  
Gontarek E(1991)Surface modifications for antifouling membranes Journal of Membrane Science 62 87-102