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Structural analysis and corrosion studies on an ISO 5832-9 biomedical alloy with TiO2 sol–gel layers

机译:具有TiO2溶胶-凝胶层的ISO 5832-9生物医学合金的结构分析和腐蚀研究

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摘要

The aim of this study was to demonstrate the relationship between the structural and corrosion properties of an ISO 5832-9 biomedical alloy modified with titanium dioxide (TiO2) layers. These layers were obtained via the sol–gel method by acid-catalyzed hydrolysis of titanium isopropoxide in isopropanol solution. To obtain TiO2 layers with different structural properties, the coated samples were annealed at temperatures of 200, 300, 400, 450, 500, 600 and 800 °C for 2 h. For all the prepared samples, accelerated corrosion measurements were performed in Tyrode’s physiological solution using electrochemical methods. The most important corrosion parameters were determined: corrosion potential, polarization resistance, corrosion rate, breakdown and repassivation potentials. Corrosion damage was analyzed using scanning electron microscopy. Structural analysis was carried out for selected TiO2 coatings annealed at 200, 400, 600 and 800 °C. In addition, the morphology, chemical composition, crystallinity, thickness and density of the deposited TiO2 layers were determined using suitable electron and X-ray measurement methods. It was shown that the structure and character of interactions between substrate and deposited TiO2 layers depended on annealing temperature. All the obtained TiO2 coatings exhibit anticorrosion properties, but these properties are related to the crystalline structure and character of substrate–layer interaction. From the point of view of corrosion, the best TiO2 sol–gel coatings for stainless steel intended for biomedical applications seem to be those obtained at 400 °C.
机译:这项研究的目的是证明用二氧化钛(TiO2)层改性的ISO 5832-9生物医学合金的结构和腐蚀性能之间的关系。这些层是通过溶胶-凝胶法在异丙醇溶液中酸催化异丙醇钛的水解而获得的。为了获得具有不同结构特性的TiO2层,将涂层样品在200、300、400、450、500、600和800°C的温度下退火2小时。对于所有准备好的样品,使用电化学方法在蒂罗德的生理溶液中进行了加速腐蚀测量。确定了最重要的腐蚀参数:腐蚀电位,耐极化性,腐蚀速率,击穿和再钝化电位。使用扫描电子显微镜分析腐蚀损伤。对在200、400、600和800°C退火的选定TiO2涂层进行了结构分析。另外,使用合适的电子和X射线测量方法确定沉积的TiO 2层的形态,化学组成,结晶度,厚度和密度。结果表明,衬底与沉积的TiO2层之间相互作用的结构和特性取决于退火温度。所有获得的TiO2涂层均具有防腐性能,但这些性能与晶体结构和基材-层相互作用的特性有关。从腐蚀的角度来看,用于生物医学应用的不锈钢最好的TiO2溶胶-凝胶涂层似乎是在400°C下获得的。

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