Loading…

Electrostatic-modulated interfacial crosslinking and waterborne emulsion coating toward waterproof, breathable, and antifouling fibrous membranes

[Display omitted] •A hierarchical rough structure was created on the nanofiber surface.•An environmentally-friendlywaterborne hydrophobic coating emulsion was developed.•The prepared samples display excellent waterproof, breathable, and antifouling performance.•This waterborne emulsion is suitable f...

Full description

Saved in:
Bibliographic Details
Published in:Chemical engineering journal (Lausanne, Switzerland : 1996) Switzerland : 1996), 2023-02, Vol.454, p.140439, Article 140439
Main Authors: Gu, Jiatai, Zheng, Maorong, Zhu, Tianxue, Wang, Ni, Wang, Liming, Yu, Jianyong, Qin, Xiaohong
Format: Article
Language:English
Subjects:
Citations: Items that this one cites
Items that cite this one
Online Access:Get full text
Tags: Add Tag
No Tags, Be the first to tag this record!
Description
Summary:[Display omitted] •A hierarchical rough structure was created on the nanofiber surface.•An environmentally-friendlywaterborne hydrophobic coating emulsion was developed.•The prepared samples display excellent waterproof, breathable, and antifouling performance.•This waterborne emulsion is suitable for the hydrophobization of multiple hydrophilic substrates. Developing hydrophobic surfaces for flexible fibrous membranes has attracted tremendous attention for their potential applications in waterproofing, antifouling, and drag reduction. However, conventional methods, such as hydrothermal, coating, and phase separation, often involve complex preparation processes,plugging of porous structures,and heavy use of organic solvents. Herein, a facile and eco-friendly assembly strategy is proposed for fabricating superior hydrophobic surfaces on fibrous membranes. Firstly, a hierarchical rough structure was created on the fiber surface using titanium dioxide nanoparticles as building blocks by a one-pot procedure based on electrostatic complexation and interfacial crosslinking. The procedure is performed in aqueousmedia, at low temperature (50℃) and very fast (∼20 min). Subsequently, a waterborne emulsion was developed by low-surface-energy organosilicon self-assembly in aqueousmedia, which was adopted to coat fiber substrate for surface hydrophobization. The amount of organosilicon is reduced by >90 % of that required in the traditional coating. Consequently, the resultant fibrous membranes exhibit a robust hydrophobic surface with UV-resistant,washdurability, photocatalytic self-cleaning effect, and excellent breathable properties. Besides, this general waterborne hydrophobic coating strategy could be applied to various hydrophilic substrates, including fabrics, aerogels, and sponges. This work provides a novel method to design and fabricate multi-functional hydrophobic surfaces.
ISSN:1385-8947
1873-3212
DOI:10.1016/j.cej.2022.140439