Composite PVDF ultrafiltration membrane tailored by sandwich-like GO@UiO-66 nanoparticles for breaking the trade-off between permeability and selectivity

聚偏氟乙烯 化学工程 生物污染 结垢 材料科学 纳米复合材料 超滤(肾) 磁导率 色谱法 化学 复合材料 生物化学 工程类
作者
Zihan Liang,Jin Wang,Qingyun Zhang,Tao Zhuang,Chuanming Zhao,Yao Fu,Yaqing Zhang,Fan Yang
出处
期刊:Separation and Purification Technology [Elsevier]
卷期号:276: 119308-119308 被引量:36
标识
DOI:10.1016/j.seppur.2021.119308
摘要

It remains a great challenge to design and prepare polymeric membranes with excellent permeability while maintaining high rejection and better antifouling. However, emerging materials that are capable of minimizing membrane fouling and breaking the trade-off between permeability and selectivity are urgently needed. In this study, by combining UiO-66 with graphene oxide (GO) nanosheets, sandwich-like [email protected] was assembled using the solvothermal process, which was later blended with the bulk polyvinylidene fluoride (PVDF) membrane to produce nanocomposite membranes (NCMs) via non-solvent induce phase separation method. With the incorporation of only 1.0 w.t% [email protected] nanocomposites, the water flux of NCM reached 263.3 Lm-2h−1 from 142.8 Lm-2h−1 and BSA rejection ratio improved to 93.0% from 68.0% compared to the original PVDF membrane, respectively. Meanwhile, [email protected] NCM displayed impressive antifouling features with an 81.8 % water flux recovery ratio (FRR), which is significantly higher than that of pure PVDF membranes (51.4 %). Sandwich-like [email protected] nanomaterials increase membrane porosity and open the water molecular permeability channel. At the same time, higher-hydrophilic performance of NCM resulted from more hydrophilic functional groups of the [email protected] exposure and PVDF phase transformation from α-to-β contributed to the formation of a dense hydration layer on the surface of the membrane and Zeta potential on membrane surface decreased, thus improving organic interception and alleviating membrane fouling. Furthermore, NCMs enhance membrane mechanical strength and chemical stability. Overall results suggest that the inclusion of sandwich-like [email protected] is a competent modification technique that significantly improves membrane performance and has a great potential for practical application.
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