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首页> 外文期刊>Surface & Coatings Technology >Nanocomposite coatings based on graphene and siloxane polymers deposited by atmospheric pressure plasma. Application to corrosion protection of steel
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Nanocomposite coatings based on graphene and siloxane polymers deposited by atmospheric pressure plasma. Application to corrosion protection of steel

机译:基于大气压等离子体沉积的石墨烯和硅氧烷聚合物的纳米复合涂层。 钢腐蚀保护的应用

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摘要

The present study proposes an alternative eco-friendly method to prepare a thin composite coating based on graphene embedded in siloxane polymers which can be used as application for the corrosion protection of steel. The nanocomposite coatings were elaborated by a dielectric barrier discharge using a nebulized colloidal suspension of graphene nanosheets (GNs) dispersed in hexamethyldisiloxane (HMDSO) used as the precursor for the polymer matrix. After obtaining a stable colloidal solution, it was nebulized into the plasma reactor to form a plasma polymer (pp) coating from HMDSO (ppHMDSO) in which GNs were incorporated (GN@ppHMDSO) on the mild steel substrate. The chemical structure of the hybrid coatings was characterized by X-ray photoelectron spectroscopy and Fourier transform infrared spectrometry. Raman spectra of GNs and GN@ppHMDSO coatings suggest the existence of charge transfer between the GNs and the HMDSO matrix. Furthermore, scanning electron microscopy confirms the synthesis of micro/nanocomposite with a fairly homogeneous dispersion of the GNs in the polymer matrix. The corrosion resistance of the samples was evaluated by electrochemical impedance spectroscopy which showed that the hybrid coatings GN@ppHMDSO deposited by a one-step atmospheric pressure plasma process, presented excellent anticorrosion performance with 99.99% of protection efficiency.
机译:本研究提出了一种替代的环保方法,可以基于嵌入硅氧烷聚合物中的石墨烯制备薄复合涂层,该方法可用作钢的腐蚀保护施加。通过使用分散在六甲基二硅氧烷(HMDSO)中的石墨烯纳米片(GNS)的雾化胶体悬浮液来阐述纳米复合材料涂层通过用作聚合物基质的前体。在获得稳定的胶体溶液后,将其雾化到等离子体反应器中以形成来自HMDSO(PPHMDSO)的血浆聚合物(PP)涂层,其中GNS在低碳钢基材上掺入(GN @ PPHMDSO)。杂交涂层的化学结构的特征在于X射线光电子能谱和傅里叶变换红外光谱法。 GNS和GN @ PPHMDSO涂层的拉曼光谱表明GNS和HMDSO基质之间的电荷转移存在。此外,扫描电子显微镜证实了微/纳米复合材料的合成,其在聚合物基质中具有相当均匀的GNS分散。通过电化学阻抗光谱评价样品的耐腐蚀性,所述电化学阻抗谱评估其显示通过一步大气压等离子体过程沉积的杂合涂层GN-κ0dso,呈现出优异的防腐性能,具有99.99%的保护效率。

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