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首页> 外文期刊>Ultrasonics sonochemistry >Ultrasound-assisted synthesis of zinc molybdate nanocrystals and molybdate-doped epoxy/PDMS nanocomposite coatings for Mg alloy protection
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Ultrasound-assisted synthesis of zinc molybdate nanocrystals and molybdate-doped epoxy/PDMS nanocomposite coatings for Mg alloy protection

机译:超声辅助合成锌钼酸锌纳米晶体和钼酸盐掺杂环氧/ PDMS纳米复合型涂料,用于Mg合金保护

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摘要

Zinc molybdate (ZM) is a safer anticorrosive additive for cooling systems when compared with chromates and lead salts, due to its insolubility in aqueous media. For most molybdate pigments, their molybdate anion (MoO42-) acts as an anionic inhibitor and its passivation capacity is comparable with chromate anion (CrOV4-2). To alleviate the environmental concerns involving chromates-based industrial protective coatings, we have proposed new alternative in this work. We have synthesized ZM nanocrystals via ultrasound-assisted process and encapsulated them within an epoxy/PDMS coating towards corrosion protection. The surface morphology and mechanical properties of these ZM doped epoxy/PDMS nanocomposite coatings is exhaustively discussed to show the effect of ZM content on protective properties. The presence of ZM nanocrystals significantly contributed to the corrosion barrier performance of the coating while the amount of ZM nanocrystals needed to prepare an epoxy coating with optimum barrier performance was established. Beyond 2 wt% ZM concentration, the siloxane-structured epoxy coating network became saturated with ZM pigments. This further broadened inherent pores channels, leading to the percolation of corrosion chloride ions through the coating. SEM evidence has revealed proof of surface delamination on ZM3 coating. A model mechanism of corrosion resistance has been proposed for ZM doped epoxy/PDMS nanocomposite coatings from exhaustive surface morphological investigations and evidence. This coating matrix may have emerging applications in cooling systems as anticorrosive surface paints as well as create an avenue for environmental corrosion remediation.
机译:锌钼酸锌(ZM)是与铬酸盐和铅盐相比的冷却系统的更安全的防腐蚀添加剂,其由于其在水性介质中的不溶血性。对于大多数钼酸盐颜料,它们的钼酸盐阴离子(MOO42-)用作阴离子抑制剂,其钝化能力与铬酸盐阴离子(CROV4-2)相当。为了减轻涉及基于铬酸盐的工业防护涂料的环境问题,我们提出了这项工作的新替代方案。我们通过超声辅助工艺合成ZM纳米晶体,并将它们封装在环氧/ PDMS涂层中,朝向腐蚀保护。这些ZM掺杂环氧/ PDMS纳米复合涂层的表面形态和力学性能被遗注地讨论以显示ZM含量对保护性能的影响。 ZM纳米晶体的存在显着导致涂层的耐腐蚀阻挡性能,同时建立了制备具有最佳阻隔性能的环氧涂层所需的ZM纳米晶体的量。超过2wt%ZM浓度,硅氧烷结构的环氧树脂涂层网络与ZM颜料饱和。这进一步扩大了固有的孔通道,导致腐蚀氯离子通过涂层的渗透。 SEM证据揭示了ZM3涂层对表面分层的证据。 ZM掺杂环氧/ PDMS纳米复合材料涂层的耐腐蚀性耐腐蚀性机理,从属于表面形态调查和证据。该涂层基质可能在冷却系统中具有新出现的应用,作为防腐蚀表面涂料,以及为环境腐蚀修复的途径产生途径。

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