Nanoindentation and nano-scratching of hydroxyapatite coatings for resorbable magnesium alloy bone implant applications.

P. Lemoine, J. Acheson, S. McKillop, J. J. van den Beucken, Joanna Ward, A. Boyd, B. Meenan
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引用次数: 10

Abstract

The corrosion rate of Mg alloys is currently too high for viable resorbable implant applications. One possible solution is to coat the alloy with a hydroxyapatite (HA) layer to slow the corrosion and promote bone growth. As such coatings can be under severe stresses during implant insertion, we present a nano-mechanical and nano-tribological investigation of RF-sputtered HA films on AZ31 Mg alloy substrates. EDX and XRD analysis indicate that as-deposited coatings are amorphous and Ca-deficient whereas rapid thermal annealing results in c-axis orientation and near-stoichiometric composition. Analysis of the nanoindentation data using a thin film model shows that annealing increases the coating's intrinsic hardness (H) and strain at break (H/E) values, from 2.7 GPa to 9.4 GPa and from 0.043 to 0.079, respectively. In addition, despite being rougher, the annealed samples display better wear resistance; a sign that the rapid thermal annealing does not compromise their interfacial strength and that these systems have potential for resorbable bone implant applications.
可吸收镁合金骨植入物应用的羟基磷灰石涂层的纳米压痕和纳米刮擦。
镁合金的腐蚀速率目前对于可行的可吸收植入物应用来说太高。一种可能的解决方案是在合金上涂覆羟基磷灰石(HA)层,以减缓腐蚀并促进骨生长。由于这种涂层在植入过程中可能会受到严重的应力,我们对AZ31镁合金基底上的射频溅射HA膜进行了纳米机械和纳米摩擦学研究。EDX和XRD分析表明,沉积的涂层是无定形的和缺钙的,而快速热退火导致c轴取向和接近化学计量组成。使用薄膜模型对纳米压痕数据的分析表明,退火使涂层的固有硬度(H)和断裂应变(H/E)值分别从2.7GPa增加到9.4GPa和从0.043增加到0.079。此外,尽管退火样品更粗糙,但其耐磨性更好;这表明快速热退火不会损害它们的界面强度,并且这些系统具有可吸收骨植入物应用的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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