Hydrophobicity modification of large-scale PMMA by modularized DBD plasma reactor

Xiuhan Guan, Liyan Wang, Fangsong Li, Jingang Xu, Jinzhuo Li, Xi Zhu, Fang Zhi
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Abstract

Improving the hydrophobicity of insulation surface is an effective method to enhance the electrical insulating performance of outdoor insulation. Atmospheric pressure low temperature plasma technology has made great progress in material surface modification, but most of the existing plasma reactors range in size from a few to tens of centimeters, which cannot meet the need for efficient surface modification of large-scale insulating materials. In this paper, a novel modularized dielectric barrier discharge (MDBD) reactor with gas path optimization and discharge regulation was designed, which was applied to deposit functionalized thin film on the surface of large-scale polymethyl methacrylate (PMMA). The results show that the MDBD reactor with length of 1120 mm achieves uniform discharge, and the addition of precursor hexamethyldisiloxane (HMDSO) promotes first and then suppresses the discharge power of Ar plasma. The water contact angle (WCA) of PMMA increases after the MDBD treatment and the WCA in different positions does not exceed ±5°, indicating the uniform modification of MDBD treatment. Furthermore, the surface properties of PMMA are obviously affected by the addition amount of HMDSO under MDBD treatment. When the addition is 60 sccm, WCA increases from 67° to 140°, and the flashover voltage increases from 6 kV to 10 kV, demonstrating the improvement of surface properties by the MDBD modification.
模块化DBD等离子体反应器对大型PMMA的疏水性改性
提高绝缘表面的疏水性是提高室外绝缘电绝缘性能的有效方法。常压低温等离子体技术在材料表面改性方面取得了很大进展,但现有的等离子体反应器大多尺寸在几厘米到几十厘米之间,无法满足大规模绝缘材料高效表面改性的需要。设计了一种具有气路优化和放电调节功能的模块化介质阻挡放电反应器(MDBD),并将其应用于大规模聚甲基丙烯酸甲酯(PMMA)表面沉积功能化薄膜。结果表明:长度为1120 mm的MDBD反应器实现了均匀放电,前驱体六甲基二硅氧烷(HMDSO)的加入先促进后抑制氩等离子体的放电功率;MDBD处理后PMMA的水接触角(WCA)增大,且不同位置的WCA不超过±5°,表明MDBD处理后改性均匀。此外,在MDBD处理下,HMDSO的加入量对PMMA的表面性能有明显影响。当添加量为60 sccm时,WCA从67°增加到140°,闪络电压从6 kV增加到10 kV,表明MDBD改性改善了表面性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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