Preparation and properties of PVDF/SiO2@GO nanohybrid membranes via thermally induced phase separation method

被引:75
作者
Li, Zhong-Kun
Lang, Wan-Zhong [1 ]
Miao, Wei
Yan, Xi
Guo, Ya-Jun
机构
[1] Shanghai Normal Univ, Dept Chem & Chem Engn, Key Lab Resource Chem, Educ Minist, 100 Guilin Rd, Shanghai 200234, Peoples R China
关键词
Poly(vinylidene fluoride) (PVDF); Graphene oxide (GO); Ultrafiltration; Thermally induced phase separation(TIPS); SiO2@GO nanohybrid; PVDF COMPOSITE MEMBRANES; HOLLOW-FIBER MEMBRANES; WALLED CARBON NANOTUBE; GRAPHENE OXIDE; POLYVINYLIDENE FLUORIDE; WASTE-WATER; TIPS; DILUENT; PERFORMANCE; FABRICATION;
D O I
10.1016/j.memsci.2016.03.048
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Graphene oxide (GO), one of the most promising filter materials, is intensively employed to prepare the membranes via non-solvent induced phase separation(NIPS) method, but it has not been found to modify polymeric membranes via thermally induced phase separation (TIPS) method. In this work, the derivative of GO, SiO2@GO nanohybrid, is fabricated and employed to synthesize PVDF/SiO2@GO nanohybrid membranes via TIPS method for the first time. The results indicate that the PVDF/SiO2@GO nanohybrid membranes experience liquid-liquid phase separation mechanism, and exhibit bi-continual and asymmetric structure. The included SiO2@GO nanohybrid is uniformly dispersed in the membrane matrix. With the addition of SiO2@GO, the top surface becomes denser and the pore size decreases; but overhigh SiO2@GO addition for membrane M-5 triggers in the adverse trend. This is caused by the combined actions of nucleation and growth of PVDF and viscosity increase of cast solution due to the addition SiO2@GO nanohybrid. The BSA rejection of membrane gradually increases with the addition of PVDF/SiO2@GO nanohybrid accompanied with the decline of pure water permeation flux. As the SiO2'@GO content increases to 0.9 wt%, the PVDF/SiO2@GO nanohybrid membrane M-4 presents the highest BSA rejection of 91.7% and the lowest permeation flux of 182.6 L m(-2) h(-1) bar(-1). However, the overhigh SiO2@GO addition (1.2 wt%) leads to the outstanding pure water permeation flux of 679.1 L m(-2) h(-1) bar(-1) and a much lower BSA rejection. The addition of PVDF/SiO2@GO nanohybrid evidently improves the surface hydrophilicity and antifouling ability of resultant membranes. The XRD patterns and FTIR spectra of membranes verify the exclusive oc-phase of PVDF, and the melting temperature(T-m) and crystallinity(x(C)) evidently increase with the addition of SiO2@GO nanohybrid up to 0.9 wt% in the dopes. Overhigh SiO2@GO addition (1.2 wt%) leads to small decline for these parameters. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:151 / 161
页数:11
相关论文
共 50 条
[31]   Formation of an Interconnected Lamellar Structure in PVDF Membranes with Nanoparticles Addition via Solid-Liquid Thermally Induced Phase Separation [J].
Ma, Wenzhong ;
Zhang, Jun ;
Van der Bruggen, Bart ;
Wang, Xiaolin .
JOURNAL OF APPLIED POLYMER SCIENCE, 2013, 127 (04) :2715-2723
[32]   Preparation of PVDF membrane via synergistically vapor and non-solvent-induced phase separation [J].
Chen, Min ;
Sun, Qianyun ;
Zhou, Yue ;
Cui, Zhaoliang ;
Wang, Zhaohui ;
Xing, Weihong .
APPLIED WATER SCIENCE, 2022, 12 (07)
[33]   Preparation of PVDF/poly(tetrafluoroethylene-co-vinyl alcohol) blend membranes with antifouling propensities via nonsolvent induced phase separation method [J].
Sun, Y. ;
Rajabzadeh, S. ;
Ma, W. ;
Zhou, Z. ;
Kakihana, Y. ;
Ohmukai, Y. ;
Miki, J. ;
Matsuyama, H. .
JOURNAL OF APPLIED POLYMER SCIENCE, 2016, 133 (32)
[34]   Fabrication of hydrophilic PVDF ultrafiltration membranes via thermally induced phase separation coupled with amphiphilic copolymer deposition [J].
Zhang, Pengfei ;
Gonzales, Ralph Rolly ;
Shen, Cong ;
Xiang, Shang ;
Li, Bowen ;
Cui, Zhenyu ;
Matsuyama, Hideto .
PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2024, 186 :773-782
[35]   Dual PVP roles for preparing PVDF hollow fiber membranes with bicontinuous structures via the complex thermally induced phase separation (c-TIPS) [J].
Hou, Chunguang ;
Pang, Zhiguang ;
Xie, Songchen ;
Yang, Ziyun ;
Wong, Ngie Hing ;
Sunarso, Jaka ;
Peng, Yuelian .
SEPARATION AND PURIFICATION TECHNOLOGY, 2024, 332
[36]   Fabrication of PVDF/EVOH blend hollow fiber membranes with hydrophilic property via thermally induced phase process [J].
Xiang, Shang ;
Tang, Xiuxiu ;
Rajabzadeh, Saeid ;
Zhang, Pengfei ;
Cui, Zhenyu ;
Matsuyama, Hideto .
SEPARATION AND PURIFICATION TECHNOLOGY, 2022, 301
[37]   Preparation of EVOH microporous membranes via thermally induced phase separation using binary solvents [J].
Yin, Jie ;
Lv, Rui ;
Zhou, Jing ;
Du, Qiang-guo ;
Zhong, Wei .
CHINESE JOURNAL OF POLYMER SCIENCE, 2007, 25 (04) :379-386
[38]   Preparation of Ethylene Chlorotrifluoroethylene Co-polymer Membranes via Thermally Induced Phase Separation [J].
Zhou Bo ;
Lin Ya-Kai ;
Ma Wen-Zhong ;
Tang Yuan-Hui ;
Tian Ye ;
Wang Xiao-Lin .
CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 2012, 33 (11) :2585-2590
[39]   Enhanced morphology and hydrophilicity of PVDF flat membrane with modified CaCO3@SMA additive via thermally induced phase separation method [J].
Zhang, Zhichao ;
Wang, Wei ;
Xu, Xin ;
Liu, Xi ;
Li, Yuanling ;
Zhang, Peng .
JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2022, 107 :444-455
[40]   Diluent selection of PVDF membrane prepared via thermally induced phase separation [J].
Yang Jian ;
Wang Xiao-Lin ;
Tian Feng ;
Lin Ya-Kai ;
Wang Zheng .
CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 2008, 29 (09) :1895-1900