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Influence of Substrate Heating and Nitrogen Flow on the Composition Morphological and Mechanical Properties of SiNx Coatings Aimed for Joint Replacements

机译:基体加热和氮气流量对旨在替代接头的SiNx涂层的组成形貌和力学性能的影响

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摘要

Silicon nitride (SiNx) coatings are promising for joint replacement applications due to their high wear resistance and biocompatibility. For such coatings, a higher nitrogen content, obtained through an increased nitrogen gas supply, has been found to be beneficial in terms of a decreased dissolution rate of the coatings. The substrate temperature has also been found to affect the composition as well as the microstructure of similar coatings. The aim of this study was to investigate the effect of the substrate temperature and nitrogen flow on the coating composition, microstructure and mechanical properties. SiNx coatings were deposited onto CoCrMo discs using reactive high power impulse magnetron sputtering. During deposition, the substrate temperatures were set to 200 °C, 350 °C or 430 °C, with nitrogen-to-argon flow ratios of 0.06, 0.17 or 0.30. Scanning and transmission electron spectroscopy revealed that the coatings were homogenous and amorphous. The coatings displayed a nitrogen content of 23–48 at.% (X-ray photoelectron spectroscopy). The surface roughness was similar to uncoated CoCrMo (p = 0.25) (vertical scanning interferometry). The hardness and Young’s modulus, as determined from nanoindentation, scaled with the nitrogen content of the coatings, with the hardness ranging from 12 ± 1 GPa to 26 ± 2 GPa and the Young’s moduli ranging from 173 ± 8 GPa to 293 ± 18 GPa, when the nitrogen content increased from 23% to 48%. The low surface roughness and high nano-hardness are promising for applications exposed to wear, such as joint implants.
机译:氮化硅(SiNx)涂层具有高耐磨性和生物相容性,因此有望用于关节置换应用。对于这种涂层,已经发现通过增加氮气供应而获得的更高的氮含量在降低涂层的溶解速率方面是有益的。还发现基材温度会影响相似涂层的组成以及微观结构。这项研究的目的是研究基材温度和氮气流量对涂料组成,微观结构和机械性能的影响。使用反应性高功率脉冲磁控溅射将SiNx涂层沉积到CoCrMo圆盘上。在沉积过程中,将基板温度设置为200°C,350°C或430°C,氮气与氩气的流量比为0.06、0.17或0.30。扫描和透射电子光谱表明,涂层是均质和无定形的。涂层的氮含量为23–48 at。%(X射线光电子能谱)。表面粗糙度类似于未涂层的CoCrMo(p = 0.25)(垂直扫描干涉法)。由纳米压痕确定的硬度和杨氏模量与涂层的氮含量成比例,硬度范围为12±1 GPa至26±2 GPa,杨氏模量范围为173±8 GPa至293±18 GPa,当氮含量从23%增加到48%时低表面粗糙度和高纳米硬度对于暴露于磨损的应用(例如关节植入物)很有希望。

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