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用于膜氟化的有益碳纳米管中间层,以实现膜蒸馏中强大的超疏水性和抗润湿性

Beneficial CNT Intermediate Layer for Membrane Fluorination toward Robust Superhydrophobicity and Wetting Resistance in Membrane Distillation.

作者信息

Wang Yuting, Han Minyuan, Liu Lang, Yao Jingmei, Han Le

机构信息

Key Laboratory of the Three Gorges Reservoir Region's Eco-Environment, Ministry of Education, School of Environment and Ecology, Chongqing University, Chongqing 400045, PR China.

Key Laboratory of low-grade Energy Utilization Technologies and Systems, Ministry of Education, School of Energy and Power Engineering, Chongqing University, Chongqing 400045, PR China.

出版信息

ACS Appl Mater Interfaces. 2020 May 6;12(18):20942-20954. doi: 10.1021/acsami.0c03577. Epub 2020 Apr 24.

Abstract

Robust membrane hydrophobicity is crucial in membrane distillation (MD) to produce clean water, yet challenged by wetting phenomenon. We herein proposed a robust superhydrophobization process, by making use of a carbon nanotube (CNT) intermediate layer over commercial hydrophobic membrane, indirectly grafting the low-surface-energy material 1H,1H,2H,2H-perfluorodecyltriethoxysilane (FAS), with the achieved membrane denoted as PVDF-CNT-FAS, in systematic comparison with direct grafting FAS on alkalinized PVDF denoted as PVDF-OH-FAS. Superhydrophobicity with water contact angle of 180° was easily achieved from initial hydrophilic interface for both two resultant membranes. Interestingly, the existence of a CNT intermediate layer significantly maintained the stable hydrophobicity in various harsh conditions and improved mechanical properties, at an expense of ca. 20% smaller pore size and extended membrane thickness than PVDF-OH-FAS. In the MD experiment, the PVDF-CNT-FAS exhibited no vapor flux sacrifice, giving constant flux with the control and doubled that for PVDF-OH-FAS. A mass-heat transfer modeling suggested no significant heat loss but facilitated vapor flux with the CNT layer, unlike the impeded transfer for the counterpart membrane. A superior wetting resistance against 0.4 mM SDS further confirmed the benefit of constructing the CNT intermediate layer, presumably because of its excellent slippery property. This study demonstrates the important role of the CNT intermediate layer toward robust superhydrophobic membrane, suggesting the interest of applying the functional nanomaterial for controllable interface design.

摘要

坚固的膜疏水性对于膜蒸馏(MD)生产清洁水至关重要,但却受到润湿现象的挑战。在此,我们提出了一种坚固的超疏水化工艺,通过在商用疏水膜上使用碳纳米管(CNT)中间层,间接接枝低表面能材料1H,1H,2H,2H-全氟癸基三乙氧基硅烷(FAS),所得膜记为PVDF-CNT-FAS,并与直接在碱化的PVDF上接枝FAS(记为PVDF-OH-FAS)进行系统比较。两种所得膜从初始亲水界面都很容易实现水接触角为180°的超疏水性。有趣的是,CNT中间层的存在显著维持了在各种苛刻条件下的稳定疏水性并改善了机械性能,但代价是孔径比PVDF-OH-FAS小约20%且膜厚度增加。在MD实验中,PVDF-CNT-FAS没有牺牲蒸汽通量,与对照相比通量恒定,是PVDF-OH-FAS的两倍。质量-传热模型表明,与对应膜的受阻传递不同,CNT层没有显著的热损失但促进了蒸汽通量。对0.4 mM SDS的优异抗润湿性进一步证实了构建CNT中间层的益处,可能是因为其优异的滑爽性能。本研究证明了CNT中间层对坚固超疏水膜的重要作用,表明了应用功能纳米材料进行可控界面设计的意义。

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