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Characterization of Nanocomposite Graphene/polymer Films for Electrical Contact Applications

机译:用于电接触应用的纳米复合石墨烯/聚合物薄膜的表征

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This paper presents a thin nanocomposite film, composed of graphene and of a polymer acting as a binder. The challenge was to realize a conducting, homogeneous and adherent film on a copper based material substrates (CuSn8) used for electrical contacts applications with the aim of reducing corrosion. The first step was to find the right formulation, the deposition process and the post-treatment for the composite. Flakes of graphene were mixed to two different types of high molecular weight polymers in ethanol. The films were deposited by dip-coating of the substrates in the solution; they were then grafted to the substrate by UV curing. Films between 100 nm to 300 nm thick could be deposited. Good adhesion of the film to the substrate was obtained with poly-4-vinylpyridine (P4VP) acting as a binder. The weight ratio of graphene/polymer was important for the homogeneity of the deposited films. The next step was to plate the samples with a nickel layer. Very thin nanometric nickel films were deposited on the graphene/polymer composite by an electroless nickel-boron process (NiB). The nickel nanofilm, a few tens of nanometres thick, was observed to be covering the graphene flakes embedded in the composite. Various techniques were used to characterize the samples: SEM, AFM, conducting AFM, Raman and 4 point sheet resistance measurements. Finally the samples were coated with 1.2 μm of electrolytic nickel and 0.4 μm of electrolytic gold. They were then exposed to nitric acid vapor (NAV) and hypochlorite bleach corrosion tests for several hours. The graphene composite layer was observed to hinder the pore and pitting corrosion on the samples. This process is very versatile and can find many applications in the field of corrosion protection.
机译:本文提出了一种由石墨烯和作为粘合剂的聚合物组成的纳米复合薄膜。挑战在于在用于电触点应用的铜基材料基底(CuSn8)上实现导电,均匀且附着的薄膜,以减少腐蚀。第一步是找到正确的配方,沉积工艺以及复合材料的后处理。将石墨烯薄片与乙醇中的两种不同类型的高分子量聚合物混合。通过在溶液中浸涂底物来沉积薄膜。然后通过紫外线固化将它们接枝到基材上。可以沉积厚度在100 nm至300 nm之间的膜。用聚-4-乙烯基吡啶(P4VP)作为粘合剂,可以使薄膜与基材保持良好的粘合性。石墨烯/聚合物的重量比对于沉积膜的均匀性很重要。下一步是在样品上镀镍层。通过化学镀镍-硼工艺(NiB)将非常薄的纳米镍膜沉积在石墨烯/聚合物复合材料上。观察到几十纳米厚的镍纳米膜覆盖了嵌入复合材料中的石墨烯薄片。各种技术用于表征样品:SEM,AFM,进行AFM,拉曼和4点薄层电阻测量。最后,样品涂有1.2μm的电解镍和0.4μm的电解金。然后将它们暴露于硝酸蒸气(NAV)和次氯酸盐漂白剂腐蚀测试中几个小时。观察到石墨烯复合层阻碍了样品上的孔和点蚀。该方法用途广泛,可以在腐蚀防护领域找到许多应用。

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