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首页> 外文期刊>Plasma Science, IEEE Transactions on >Improved Surface Modification of Polymer Films by Energy-Compressed Dielectric Barrier Discharge With Discharge-Time-Regulated Power Source
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Improved Surface Modification of Polymer Films by Energy-Compressed Dielectric Barrier Discharge With Discharge-Time-Regulated Power Source

机译:能量压缩介电阻挡放电与放电时间可调节的电源改善了聚合物薄膜的表面改性

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摘要

An energy-compressed dielectric barrier discharge (DBD) in the atmospheric-pressure air is established to improve the surface modification of the polymer films. The effective discharge time of per repetitive cycle in the DBD system is adjusted by employing an active regulated power source, which can compress the energy transferred to the DBD load in the time domain. The effect of the energy compression on the surface modification of the polyethylene films is studied at different energy densities and frequencies by using the contact angle measurement, the atomic force microscope, and the X-ray photoelectron spectroscope. The results show that, at the given energy density and frequency, the surface wettability is improved by increasing the energy compression degree due to the higher surface roughness and more oxygen-containing polar functional groups. Furthermore, less energy density is needed to achieve the same level of surface wettability by increasing the energy compression degree. The reasons for the high performance of the energy-compressed DBD are the increase of the reactive species density and the enhancement of the physical and chemical interactions. As a result, the energy-compressed DBD is a superior solution for the polymer surface modification.
机译:建立大气压空气中的能量压缩介电势垒放电(DBD),以改善聚合物膜的表面改性。 DBD系统中每个重复周期的有效放电时间是通过使用有源稳压电源来调整的,该有源稳压电源可以在时域内压缩传输到DBD负载的能量。通过使用接触角测量,原子力显微镜和X射线光电子能谱仪,研究了能量压缩对聚乙烯膜表面改性的影响,研究了能量密度和频率的变化。结果表明,在给定的能量密度和频率下,由于较高的表面粗糙度和更多的含氧极性官能团,可通过增加能量压缩程度来改善表面润湿性。此外,通过增加能量压缩度,需要更少的能量密度来达到相同水平的表面润湿性。能量压缩DBD高性能的原因是反应物种密度的增加以及物理和化学相互作用的增强。结果,能量压缩的DBD是聚合物表面改性的出色解决方案。

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