Ding Yi, Guo Zhansheng, Dong Xinan, You Hong, Mei Junxue, Hou Xuguang, Liang Zhenlin, Li Zhipeng
Marine College, Shandong University, Weihai 264209, China.
State Key Laboratory of Urban Water Resources and Water Environment, School of Marine Science and Technology, Harbin Institute of Technology at Weihai, Weihai 264200, China.
Membranes (Basel). 2021 Sep 14;11(9):703. doi: 10.3390/membranes11090703.
Based on carboxylated multi-walled carbon nanotubes (MWCNTs-COOH), a MWCNTs/PVDF conductive membrane was prepared by a vacuum filtration cross-linking method. The surface compositions and morphology of conductive membranes were studied by X-ray photoelectron spectroscopy and high-resolution field emission scanning electron microscopy, respectively. The effects of cross-linked polymeric polyvinyl alcohol (PVA) on the conductive membrane properties such as the porosity, pore size distribution, pure water flux, conductivity, hydrophilicity, stability and antifouling properties were investigated. Results showed that the addition of PVA to the MWCNTs/PVDF conductive membrane decreased the pure water flux, porosity and the conductivity. However, the hydrophilicity of the modified MWCNTs/PVDF conductive membrane was greatly improved, and the contact angle of pure water was reduced from 70.18° to 25.48° with the addition of PVA contents from 0 wt% to 0.05 wt%. Meanwhile, the conductive membranes with higher content had a relatively higher stability. It was found that the conductive functional layer of the conductive membrane had an average mass loss rate of 1.22% in the 30 min ultrasonic oscillation experiment. The tensile intensity and break elongation ratio of the conductive membrane are improved by the addition of PVA, and the durability of the conductive membrane with PVA was superior to that without PVA added. The electric assisted anti-fouling experiments of modified conductive membrane indicated that compared with the condition without electric field, the average flux attenuation of the conductive membrane was reduced by 11.2%, and the membrane flux recovery rate reached 97.05%. Moreover, the addition of PVA could accelerate the clean of the conductive membranes.
基于羧基化多壁碳纳米管(MWCNTs-COOH),采用真空过滤交联法制备了MWCNTs/PVDF导电膜。分别通过X射线光电子能谱和高分辨率场发射扫描电子显微镜研究了导电膜的表面组成和形貌。研究了交联聚合物聚乙烯醇(PVA)对导电膜性能的影响,如孔隙率、孔径分布、纯水通量、电导率、亲水性、稳定性和抗污染性能。结果表明,在MWCNTs/PVDF导电膜中添加PVA会降低纯水通量、孔隙率和电导率。然而,改性MWCNTs/PVDF导电膜的亲水性得到了极大改善,随着PVA含量从0 wt%增加到0.05 wt%,纯水接触角从70.18°降低到25.48°。同时,较高含量的导电膜具有相对较高的稳定性。发现在30分钟超声振荡实验中,导电膜的导电功能层平均质量损失率为1.22%。添加PVA提高了导电膜的拉伸强度和断裂伸长率,含PVA的导电膜耐久性优于未添加PVA的导电膜。改性导电膜的电辅助抗污染实验表明,与无电场条件相比,导电膜的平均通量衰减降低了11.2%,膜通量恢复率达到97.05%。此外,添加PVA可以加速导电膜的清洗。