材料科学
烧结
陶瓷
膜
陶瓷膜
纤维
中空纤维膜
复合材料
抗弯强度
化学工程
微观结构
相位反转
兴奋剂
多孔性
催化作用
化学
有机化学
工程类
生物化学
光电子学
作者
Songxue Wang,Jiayu Tian,Qiao Wang,Zhiwei Zhao,Fuyi Cui,Guibai Li
标识
DOI:10.1016/j.memsci.2018.10.078
摘要
A copper oxide (CuO) doped alumina ceramic hollow fiber membrane was fabricated via combined phase-inversion and liquid-phase sintering technique at low sintering temperature, with the purpose to enhance the flexural strength and reduce the preparation cost. The effect of CuO contents on the microstructure and properties of the ceramic hollow fiber membrane was systematically investigated. The results showed that the 3 wt% CuO doped ceramic hollow fiber membrane sintered at 1250 °C for 2 h displayed a maximum flexural strength (116.78 MPa), which was more than 3 times higher than that of control membrane without CuO addition. The 3 wt% CuO doped ceramic hollow fiber membrane exhibited a porosity of 34.6%, mean pore size of 700 nm and pure water flux of 1255 L m−2 h−1 bar−1. Furthermore, the catalytic performance of CuO doped ceramic hollow fiber membrane was investigated. With RhB as a model compound, it was shown that as high as 81.5% of degradation efficiency could be achieved by the 3 wt% CuO doped membrane in the combined peroxymonosulfate/membrane filtration system within 60 min. The CuO doped ceramic hollow fiber membrane displayed an excellent reusability in multicycle catalytic experiment and superior catalytic performance for various refractory organic pollutants.
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