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Microstructure and properties of TiO2 nanotube coatings on bone plate surface fabrication by anodic oxidation

机译:阳极氧化骨板表面制造的TiO2纳米管涂层的组织与性能

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TiO2 nanotube coatings with different structures were prepared on bone plate surface by anodic oxidation at different voltages or time and in an ethylene glycol solution containing 0.3 wt% ammonium fluoride (NH4F) and 2 vol% deionized water. Subsequently, the morphology, elemental composition, crystalline structure, surface roughness, microhardness, contact angle, adhesion force, corrosion resistance and wear resistance of the as prepared coatings were characterized. At the optimized oxidation voltage of 60 V in microstructural, biocompatibility and properties of coatings considerations, the prolonged oxidation within a certain range led to increasing nanotube thickness and inner diameter, which further improved the properties of TiO2 nanotube coating samples. Specifically, surface roughness and adhesion force of the coatings increased progressively, the maximum adhesion force was (12.10 +/- 0.50) N, while their contact angle and microhardness decreased gradually. Moreover, the coatings also exhibited the enhanced corrosion resistance in simulated body fluid (SBF), with the corrosion potential or the corrosion current increased by 56.91% or decreased by 79.45% to the largest extent. During dry friction, both friction coefficient and wear groove depth declined, corresponding reduction rates up to 22.52% and 49.01% evidenced the improved wear resistance. Besides, the major wear mechanism of the coating was a combination of abrasive and adhesive wear. Accordingly, the voltage of oxidation at 60 V and the oxidation time of 6 h were determined as the optimum processing parameters for preparing TiO2 nanotube coating on the bone plate surface, and the nanotube inner diameter and coating thickness were (118 +/- 3.5) nm and (34 +/- 2.8) mu m, respectively.
机译:通过在不同电压或时间和时间和含有0.3wt%氟化铵(NH 4 F)和2体积Vol%去离子水的含有0.3wt%氟化铵(NH 4 F)和2Vol%去离子水的含有不同结构的TiO2纳米管涂层。随后,表征了形态,元素组成,结晶结构,表面粗糙度,微硬度,接触角,粘附力,耐腐蚀性和耐磨性。在微观结构,生物相容性和涂层考虑性的优化氧化电压下,在一定范围内的延长氧化导致纳米管厚度和内径增加,这进一步改善了TiO2纳米管涂层样品的性质。具体地,涂层的表面粗糙度和粘附力逐渐增加,最大粘附力为(12.10 +/- 0.50)n,而它们的接触角和微硬度逐渐降低。此外,涂层还表现出模拟体液(SBF)中增强的耐腐蚀性,腐蚀电位或腐蚀电流在最大程度上增加了56.91%或减少了79.45%。在干燥摩擦期间,摩擦系数和磨损槽深度下降,相应的降低速率高达22.52%和49.01%,证明了改善的耐磨性。此外,涂层的主要磨损机理是磨料和粘合剂磨损的组合。因此,60V的氧化电压和6小时的氧化时间被确定为在骨板表面上制备TiO2纳米管涂层的最佳处理参数,纳米管内径和涂层厚度为(118 +/- 3.5) NM和(34 +/- 2.8)mu m。

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