用硅烷和含氟化学品改性纳米二氧化硅,制备超疏水涂层,提高自清洁性能

Guisheng Zeng, B. Gong, Yingpeng Li, Kun Wang, Qian Guan
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引用次数: 0

摘要

具有优异自清洁性能的超疏水涂层引起了研究人员的极大关注。尽管人们已经制造出了各种具有突出超疏水性能的超疏水涂层,但大多数已开发的涂层在管道阻垢应用中仍然存在不足。在这项工作中,纳米二氧化硅(nano-SiO2)通过乙烯基三乙氧基硅烷(VETS)和 1H、1H、2H、2H-全氟辛基三乙氧基硅烷(PFTS)的硅烷偶联改性制备成超疏水涂层。将 PFTS 和 VETS 的有机硅接枝到 SiO2 表面,制备低表面能的超疏水涂层,并通过聚偏氟乙烯(PVDF)固化超疏水涂层。结果表明,制备出的二氧化硅基超疏水涂层(命名为 VETS-PFTS@SiO2/PVDF)的接触角为 159.2°,表现出优异的超疏水性能。此外,该超疏水涂层在经过 50 次循环的 200 g 负载磨损测试中也表现出令人满意的耐久性能。重要的是,超疏水涂层显示出良好的机械耐久性和化学稳定性能,并且在水中放置 3 周后仍能保持优异的超疏水性能,这表明该涂层具有长期使用的潜力。在模拟阻垢试验中发现,合成的涂层还能显著降低 CaCO3 的沉积率,并成功提高其阻垢性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nano-silica modified with silane and fluorinated chemicals to prepare a superhydrophobic coating for enhancing self-cleaning performance
Superhydrophobic coatings with excellent self-cleaning performance have attracted significant concerns from researchers. Although various superhydrophobic coatings with prominent superhydrophobic properties have been fabricated, most developed coatings are still inadequate in pipeline scale inhibition applications. In this work, nano-silica (nano-SiO2) was modified by silane coupling of vinyltriethoxysilane (VETS) and 1H, 1H, 2H, 2H-perfluorooctyltriethoxysilane (PFTS) to prepare a superhydrophobic coating. Organosilicon of PFTS and VETS was grafted onto the surface of SiO2 for preparing the superhydrophobic coating with low surface energy, and the superhydrophobic coating was cured via poly(vinylidene fluoride) (PVDF). The results showed that the contact angle of the prepared silica-based superhydrophobic coating, denoted as VETS-PFTS@SiO2/PVDF, is 159.2°, exhibiting outstanding superhydrophobicity performance. Furthermore, the superhydrophobicity coating also showed satisfactory durability performance in 200 g load wear test after 50 cycles. Importantly, the superhydrophobic coating displayed promising mechanical durability, chemical stability performance, as well as maintained excellent superhydrophobic properties after being placed in water for 3 weeks, indicating the potential for long-term utilization. In the simulated scale inhibition test, it was found that the synthesized coating can also significantly decrease the deposition rate of CaCO3 and successfully enhance its scale inhibition performance.
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