4.7 Article

Preparation of an omniphobic nanofiber membrane by the self-assembly of hydrophobic nanoparticles for membrane distillation

Journal

SEPARATION AND PURIFICATION TECHNOLOGY
Volume 259, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.seppur.2020.118134

Keywords

Superhydrophobicity; Omniphobic nanofiber membrane; Chemical modification; Hydrophobic nanoparticle

Funding

  1. Korea Ministry of Environment as an Eco-Innovation Project [T112-00108-A002-3]

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In this study, a superhydrophobic and omniphobic nanofiber membrane was prepared using polyamide 6, with surface modification to enhance anti-fouling and anti-wetting properties. The hydrophobicity of the membrane surface was improved by altering the contact angle between the feed solution and the membrane surface.
An electrospun fiber membrane was prepared using polyamide 6 (PA6) to manufacture superhydrophobic and omniphobic nanofiber membranes for separation and purification processes that had excellent anti-fouling and anti-wetting performance. Trichlom(1H,1H,2H,2H-perfluomoctyl)silane (F-POSS) was used to treat the surface of PA6 with a fluorinated silane (F-silane) to impart a primary hydrophobic layer to the surface of the membrane. To enhance the hydrophobic properties of the membrane's surface, a polyvinylidene fluoride (PVDF) coating solution was grafted to F-POSS to create PVIDF-g-F-POSS. The PVIDF-g-F-POSS agglomerated into nanoparticles on the membrane surface, which can decrease its wettability. As a result, the omniphobic property was improved, thereby modifying the contact angle between the feed solution and the membrane surface. In addition, by lowering the temperature sensitivity and surface tension of the liquid to improve its wetting retardation, the membrane could be used for membrane distillation. The contact angle of deionized water on the membrane was increased from 71 degrees to 149 degrees by the surface modification. The initial water flux was maintained for up to 20 cycles (162 h) due to the hydrophobicity of the membrane surface in the membrane distillation process. Ethylene glycol rejection of the omniphobic membrane was exhibited to be 100% for 200 h at 60 degrees C.

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