首页> 外文期刊>ACS applied materials & interfaces >Organo-Chlorinated Thin Films Deposited by Atmospheric Pressure Plasma-Enhanced Chemical Vapor Deposition for Adhesion Enhancement between Rubber and Zinc-Plated Steel Monofilaments
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Organo-Chlorinated Thin Films Deposited by Atmospheric Pressure Plasma-Enhanced Chemical Vapor Deposition for Adhesion Enhancement between Rubber and Zinc-Plated Steel Monofilaments

机译:大气压等离子体增强化学气相沉积法沉积有机氯化薄膜,以增强橡胶和镀锌钢单丝之间的附着力

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A continuous-flow plasma process working at atmospheric pressure is developed to enhance the adhesion between a rubber compound and a zinc-plated steel monofilament, with the long-term objective to find a potential alternative to the electrolytic brass plating process, which is currently used in tire industry. For this purpose, a highly efficient tubular dielectric barrier discharge reactor is built to allow the continuous treatment of "endless" cylindrical substrates. The best treatment conditions found regarding adhesion are Ar/O-2 plasma pretreatment, followed by the deposition from dichloromethane of a 75 nm-thick organo-chlorinated plasma polymerized thin film. Ar/O-2, pretreatment allows the removal of organic residues, coming from drawing lubricants, and induces external growth of zinc oxide. The plasma layer has to be preferably deposited at low power to conserve sufficient hydrocarbon moieties. Surface analyses reveal the complex chemical mechanism behind the establishment of strong adhesion levels, more than five times higher after the plasma treatment. During the vulcanization step, superficial ZnO reacts with the chlorinated species of the thin film and is converted into porous and granular bump-shaped ZnwOxHyClz nanostructures. Together, rubber additives diffuse through the plasma layer and lead to the formation of zinc sulfide on the substrate surface. Hence, two distinct interfaces, rubber/thin film and thin film/substrate, are established. On the basis of these observations, hypotheses explaining the high bonding strength results are formulated.
机译:研发了一种在大气压下工作的连续流等离子体工艺,以增强橡胶化合物与镀锌钢单丝之间的粘合力,其长期目标是寻找一种可能替代目前电解铜镀覆工艺的方法。在轮胎行业。为了这个目的,建立了高效的管状介电势垒放电反应器,以允许连续处理“无限”的圆柱形基底。关于粘附力的最佳处理条件是Ar / O-2等离子体预处理,然后从二氯甲烷中沉积75 nm厚的有机氯化等离子体聚合薄膜。 Ar / O-2预处理可去除拉制润滑剂产生的有机残留物,并引起氧化锌的外部生长。等离子体层必须优选以低功率沉积以保存足够的烃部分。表面分析揭示了建立强附着力水平背后的复杂化学机理,在等离子体处理之后,化学附着力高出五倍以上。在硫化步骤中,表面的ZnO与薄膜中的氯化物发生反应,并转化为多孔的粒状凹凸状ZnwOxHyClz纳米结构。橡胶添加剂一起扩散穿过等离子层,并导致在基材表面形成硫化锌。因此,建立了两个不同的界面,即橡胶/薄膜和薄膜/基材。基于这些观察结果,提出了解释高粘结强度结果的假设。

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