JOURNAL ARTICLE

Facile Approach to Fabricate a High-Performance Superhydrophobic Mesh

Chunyu WangYue ShaoKunfeng ZhangBaichun WuXianyuan DuXingchun LiXiaoyan ZhangFuxin LiangZhenzhong Yang

Year: 2021 Journal:   ACS Applied Materials & Interfaces Vol: 13 (13)Pages: 15720-15726   Publisher: American Chemical Society

Abstract

When superhydrophobic meshes are used for oil/water separation, high flux and high intrusion pressure are usually compromised. Herein, a high-performance superhydrophobic stainless steel mesh membrane with a hairy-like poly(divinylbenzene) (PDVB) coating is fabricated by precipitated cationic polymerization. The synthesis is facile, which is completed in one step at ambient temperature within a short time, i.e., less than 90 s. The unique hair-like microstructure of PDVB is responsible for the superhydrophobic performance with less blockage for the pores. A higher flux for oil is achieved while keeping a high intrusion pressure. Especially, the ellipsoidal pore texture with two sharp tips can give additional high intrusion pressure. In the case of 2800 mesh, the superhydrophobic mesh displays an unprecedentedly high value of up to 22 kPa while maintaining a high flux of 2.0 × 104 L·m-2·h-1. The high intrusion pressure enables further increment of flux to 4.2 × 104 L·m-2·h-1 under a reduced pressure at a higher loading. The current high-performance superhydrophobic mesh realizes higher efficiency in separating oil/water mixtures, which is promising for practical applications, for example, in industrial extraction.

Keywords:
Materials science Divinylbenzene Coating Superhydrophobic coating Cationic polymerization Polymerization Polygon mesh High pressure Microstructure Flux (metallurgy) Composite material Chemical engineering Nanotechnology Copolymer Polymer chemistry Polymer Metallurgy Computer science

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15
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1.01
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24
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0.71
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Citation History

Topics

Surface Modification and Superhydrophobicity
Physical Sciences →  Materials Science →  Surfaces, Coatings and Films
Advanced Sensor and Energy Harvesting Materials
Physical Sciences →  Engineering →  Biomedical Engineering
Electrospun Nanofibers in Biomedical Applications
Physical Sciences →  Materials Science →  Biomaterials

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