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Anticorrosion and nanomechanical performance of hybrid organo-silicate coatings integrating corrosion inhibitors

机译:集成了缓蚀剂的杂化有机硅酸盐涂料的防腐性能和纳米机械性能

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Corrosion protective sol-gel silica coatings were developed on AA2024-T3 alloy by in situ cross-linking with hyperbranched poly(ethylene imine). Coatings with or without corrosion inhibitors (2-mercaptobenzothiazole or 2-mercaptobenzimidazole) and of two different thicknesses (1-1.5 and 3-3.5μm, respectively) were obtained. Potentiodynamic scans and electrochemical impedance spectroscopy (after immersion in Harrison's solution for up to 4weeks) were employed to evaluate the anticorrosion performance of coatings, whereas their thickness, morphology and integrity were assessed by scanning electron microscopy and atomic force microscopy. Further the depth sensing nanoindentation technique was employed to measure the hardness and reduced modulus of coatings and the obtained data were analyzed to indicate their wear resistance, plastic deformation and mechanical integrity. In all cases, coatings of high quality with good barrier properties (impedance modulus reaching up to 10~6Ωcm~2 at the very low frequency regime) and self-healing abilities (in case of the inclusion of an inhibitor) were obtained. The coating thickness was found to affect the anticorrosion performance, however, even thinner coatings demonstrate satisfactory protection and self-healing effect. Nanoindentation analysis revealed the flexible nature and viscous behavior of the coatings (with the theoretical transition of the elastic to plastic behavior appearing at 1000μN applied load) demonstrating also an optimal integration of the organic inhibitors into the film. It also revealed an effect of thickness with thinner coatings exhibiting slightly superior behavior in terms of elasticity and wear resistance.
机译:通过与超支化聚亚乙基亚胺原位交联,在AA2024-T3合金上开发了防腐蚀溶胶-凝胶二氧化硅涂料。获得具有或不具有腐蚀抑制剂(2-巯基苯并噻唑或2-巯基苯并咪唑)并且具有两种不同厚度(分别为1-1.5和3-3.5μm)的涂层。电位动力学扫描和电化学阻抗谱(在哈里森溶液中浸泡4周后)用于评估涂层的防腐性能,而涂层的厚度,形态和完整性则通过扫描电子显微镜和原子力显微镜进行评估。此外,采用深度传感纳米压痕技术来测量涂层的硬度和降低的模量,并对获得的数据进行分析以表明其耐磨性,塑性变形和机械完整性。在所有情况下,均获得了具有良好阻隔性能(在非常低的频率范围内,阻抗模量高达10〜6Ωcm〜2)和自愈能力(在包含抑制剂的情况下)的高质量涂层。发现涂层的厚度影响防腐性能,但是,即使更薄的涂层也表现出令人满意的保护和自修复效果。纳米压痕分析显示了涂层的柔韧性和粘稠性(在施加载荷1000μN时出现了从弹性到塑性的理论转变),这也证明了有机抑制剂在薄膜中的最佳结合。这也显示出厚度的影响,较薄的涂层在弹性和耐磨性方面表现出稍优的行为。

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