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The Effects of Gas Composition on the Atmospheric Pressure Plasma Jet Modification of Polyethylene Films

The Effects of Gas Composition on the Atmospheric Pressure Plasma Jet Modification of Polyethylene Films
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摘要 Polyethylene (PE) films are treated using an atmospheric pressure plasma jet (APPJ) with He or He/O2 gas for different periods of time. The influence of gas type on the plasma polymer interactions is studied. The surface contact angle of the PE film can be effectively lowered to 58° after 20 s of He/O2 plasma treatment and then remains almost unchanged for longer treatment durations, while, for He plasma treatment, the film surface contact angle drops gradually to 47° when the time reaches 120 s. Atomic force microscopy (AFM) results show that the root mean square (RMS) roughness was significantly higher for the He/O2 plasma treated samples than for the He plasma treated counterparts, and the surface topography of the He/O2 plasma treated PE films displays evenly distributed dome-shaped small protuberances. Chemical composition analysis reveals that the He plasma treated samples have a higher oxygen content but a clearly lower percentage of COO than the comparable He/O2 treated samples, suggesting that differences exist in the mode of incorporating oxygen between the two gas condition plasma treatments. Electron spin resonance (ESR) results show that the free radical concentrations of the He plasma treated samples were clearly higher than those of the He/O2 plasma treated ones with other conditions unchanged. Polyethylene (PE) films are treated using an atmospheric pressure plasma jet (APPJ) with He or He/O2 gas for different periods of time. The influence of gas type on the plasma polymer interactions is studied. The surface contact angle of the PE film can be effectively lowered to 58° after 20 s of He/O2 plasma treatment and then remains almost unchanged for longer treatment durations, while, for He plasma treatment, the film surface contact angle drops gradually to 47° when the time reaches 120 s. Atomic force microscopy (AFM) results show that the root mean square (RMS) roughness was significantly higher for the He/O2 plasma treated samples than for the He plasma treated counterparts, and the surface topography of the He/O2 plasma treated PE films displays evenly distributed dome-shaped small protuberances. Chemical composition analysis reveals that the He plasma treated samples have a higher oxygen content but a clearly lower percentage of COO than the comparable He/O2 treated samples, suggesting that differences exist in the mode of incorporating oxygen between the two gas condition plasma treatments. Electron spin resonance (ESR) results show that the free radical concentrations of the He plasma treated samples were clearly higher than those of the He/O2 plasma treated ones with other conditions unchanged.
作者 孙洁 邱夷平
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2015年第5期402-408,共7页 等离子体科学和技术(英文版)
基金 supported by the Fundamental Research Funds for the Central Universities of China(Nos.JUSRP1044 and JUSRP1045) National Natural Science Foundation of China(Nos.51203062 and 51302110) the Cooperative Innovation Fund,Project of Jiangsu Province,China(Nos.BY2012064,BY2013015-31 and BY2013015-32)
关键词 atmospheric pressure plasma jet PE film WETTABILITY free radicals plasma- polymer interactions atmospheric pressure plasma jet, PE film, wettability, free radicals, plasma- polymer interactions
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