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Surface modification of poly (tetrafluoroethylene) function materials by plasma-induced graft copolymerization of acrylic acid

机译:通过丙烯酸血浆诱导接枝共聚聚(四氟乙烯)功能材料的表面改性

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The plasma graft polymerization of acrylic acid (AAc) on the poly (tetrafluoroethylene) (PTFE) surface was carried out in two steps: the formation of peroxides on the PTFE surface by the plasma treatment and the AAc graft polymerization from the peroxides. Peroxides are known to be the species responsible for initiating the graft polymerization when PTFE reacts with AAc. We chose different parameters of plasma treatment to get the optimum condition for introducing maximum peroxides (2.87×10<-11>mol/cm<'2>) on the surface. The influence of grafted reaction conditions on the grafting degree was investigated. The maximum grafting degree was 25.2μg/cm<'2>. The surface microstructures and compositions of the AAc grafted PTFE film were characterized with the water contact angle meter, attenuated total reflectance Fourier- transform infrared spectroscopy (ATR-FTIR) and X-ray photoelectron spectroscopy (XPS). Contact angle measurements revealed that the water contact angle decreased from 108° to 41° and the surface free energy increased from 22. 1×10<'-5> to 62. 1×10<'-5> N/cm by the grafting AAc. The hydrophilicity of the PTFE surface was greatly enhanced. The time-dependent activity of the hydrophilicity of the grafted surface was better than that of the plasma treated film.
机译:在两个步骤中进行丙烯酸(AAC)对聚(四氟乙烯)(PTFE)表面的丙烯酸(AAC)的血浆移植物聚合:通过等离子体处理和来自过氧化物的AAC接枝聚合对PTFE表面形成过氧化物。已知过氧化物是当PTFE与AAC反应时,该物种是引起接枝聚合的物种。我们选择了不同的等离子体处理参数,以获得在表面上引入最大过氧化物(2.87×10 -11摩尔/厘米)的最佳条件。研究了接枝反应条件对接枝度的影响。最大移植程度为25.2μg/ cm 2。 AAC接枝PTFE薄膜的表面微结构和组合物的表征用水接触角计,衰减总反射率傅立叶 - 转化红外光谱(ATR-FTIR)和X射线光电子谱(XPS)。接触角测量显示,水接触角从108°到41°减小,表面自由能量从22.1×10 - 5>上升到62.1×10 < - 5> n / cm。 AAC。 PTFE表面的亲水性大大提高。接枝表面的亲水性的时间依赖性活性优于等离子体处理薄膜的活性。

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