Fabrication of high-durability superhydrophobic coatings based on dual-sized SiC particles

IF 1 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Digest Journal of Nanomaterials and Biostructures Pub Date : 2024-03-26 DOI:10.15251/djnb.2024.191.383
Z. Y. Xue, C. Q. Li, H. W. Niu, J. F. Ou, F. J. Wang, X. Z. Fang, W. Li, A. Amirfazl
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Abstract

In recent years, inspired by “biomimicry”, superhydrophobic surfaces have gained significant attention. Superhydrophobic surfaces demonstrate notable advantages in addressing interfacial issues, and superhydrophobic coatings exhibit excellent waterproofness, anti-fouling, self-cleaning, anti-corrosion, and additional capabilities, making them promising next-generation waterproof materials. However, the complex preparation process, coupled with poor wear resistance and environmental durability, severely limits their practical applications. Therefore, this article started from simplifying the preparation process and improving the durability of the coatings. Epoxy resin (E51) was used as the film-forming material, and carbon nanotubes (CNTs) and dual-sized SiC particles (nano-SiC and micro-SiC) were used as the fillers. Room temperature vulcanized silicone rubber (RTV) was used as a binder interacting with epoxy resin to promote the interface interaction between the fillers and the polymers. This process resulted in the successful preparation of superhydrophobic coatings with outstanding comprehensive performance. When the ratio of μ-SiC to n-SiC was 1:1, the prepared coating exhibited the best superhydrophobic properties with a water contact angle (WCA) of 167.4° and a sliding angle (SA) of 4.6°. Even after undergoing severe mechanical tests, such as sandpaper abrasion for 1000 cycles, sand impact for 100 cycles, cross-cut test, and tape-peeling for 70 cycles, the coatings still maintained their non-wetting Cassie-Baxter state. Furthermore, even after immersion in strong acid, strong alkali and 3.5 wt% NaCl solutions for 6 days, keeping at 500 ℃ for 2 hours, and exposure to ultraviolet for 6 days, the coatings still exhibited excellent superhydrophobicity. This suggested that the prepared coating had excellent chemical stability and high-temperature resistance. In addition, the superhydrophobic coating exhibited exceptional capabilities in self-cleaning, anti-corrosion, anti-icing, and de-icing properties. Furthermore, this coating, applicable to diverse substrates including board, steel, paper, and glass, demonstrated an impressive water contact angle (WCA) and sliding angle (SA). The spraying method offers the benefits of simplicity and cost-effectiveness. This is poised to significantly broaden its practical applications in various fields, including construction, transportation, and the chemical industry.
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基于双尺寸 SiC 颗粒的高耐久性超疏水涂层的制造
近年来,受 "仿生学 "的启发,超疏水表面备受关注。超疏水表面在解决界面问题方面表现出明显的优势,超疏水涂层具有优异的防水、防污、自洁、防腐蚀等性能,是很有前途的下一代防水材料。然而,复杂的制备工艺,加上较差的耐磨性和环境耐久性,严重限制了它们的实际应用。因此,本文从简化制备工艺和提高涂层耐久性入手。采用环氧树脂(E51)作为成膜材料,碳纳米管(CNT)和双尺寸 SiC 颗粒(纳米 SiC 和微米 SiC)作为填料。室温硫化硅橡胶(RTV)被用作与环氧树脂相互作用的粘合剂,以促进填料与聚合物之间的界面相互作用。这一工艺成功制备出了综合性能优异的超疏水涂层。当μ-SiC与n-SiC的比例为1:1时,制备出的涂层具有最佳的超疏水性能,水接触角(WCA)为167.4°,滑动角(SA)为4.6°。即使在经历了 1000 次砂纸磨损、100 次沙粒冲击、横切试验和 70 次胶带剥离等严酷的机械测试后,涂层仍能保持卡西-巴克斯特无湿状态。此外,即使在强酸、强碱和 3.5 wt% 的氯化钠溶液中浸泡 6 天,在 500 ℃ 下保温 2 小时,并在紫外线下曝晒 6 天,涂层仍表现出优异的超疏水性能。这表明制备的涂层具有优异的化学稳定性和耐高温性。此外,超疏水涂层还具有优异的自清洁、防腐蚀、防结冰和除冰性能。此外,这种涂层还适用于板材、钢材、纸张和玻璃等各种基材,并显示出令人印象深刻的水接触角(WCA)和滑动角(SA)。喷涂方法具有操作简单、成本效益高的优点。这将大大拓宽其在建筑、运输和化工等各个领域的实际应用。
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来源期刊
Digest Journal of Nanomaterials and Biostructures
Digest Journal of Nanomaterials and Biostructures 工程技术-材料科学:综合
CiteScore
1.50
自引率
22.20%
发文量
116
审稿时长
4.3 months
期刊介绍: Under the aegis of the Academy of Romanian Scientists Edited by: -Virtual Institute of Physics operated by Virtual Company of Physics.
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