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首页> 外文期刊>CERAMICS INTERNATIONAL >In-vitro electrochemical and bioactivity evaluation of SS316L reinforced hydroxyapatite functionally graded materials fabricated for biomedical implants
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In-vitro electrochemical and bioactivity evaluation of SS316L reinforced hydroxyapatite functionally graded materials fabricated for biomedical implants

机译:SS316L增强羟基磷灰石的体外电化学和生物活性评价,用于生物医学植入物制造的功能渐变材料

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摘要

Three sets of FGMs of stainless steel 316L (SS) reinforced with micro-, nano-and mixed (1:1 mass ratio) hydroxyapatite (HA) were fabricated by powder metallurgy route. The concentration of the HA was varied from 0 to 20 wt% with the increment of 5 wt% in all sets to strengthen the discrete layers of FGMs. The sintered densities along the discrete layers of FGMs continually decreased as a function of HA content which enhanced the bioactivity of the FGMs towards the end with high content of HA. All FGMs experienced an excellent corrosion response in the 0.9% NaCl solution with high passivity. Heavy diffusion of chromium (Cr) form SS to HA made the matrix Cr deficient. The chromium depletion regions around the interface of SS and HA caused an active corrosion behavior of FGMs in 0.1 M HCl solution. FGMs with micro-sized HA demonstrated the better corrosion properties than that of other FGMs. After being immersed in the simulated body fluid (SBF) solution for 7 days, the apatite layer formed on the surface of FGMs with micro-sized HA had a mature spherical morphology and leaf like shape for the other two FGMs. The apatite morphology and gained weight results proved the highest bioactivity for micro-sized HA reinforced FGMs. (C) 2015 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
机译:用粉末冶金途径制造了用微型,纳米和混合(1:1质量比例)羟基磷灰石(HA)加强的三组不锈钢316L(SS)FGMS。 HA的浓度从0〜20wt%变化,均为5wt%的增量,以加强FGM的离散层。沿离散层的FGMS的烧结密度随着HA含量的函数而不断降低,其增强了FGMS朝向具有高含量HA的末端的生物活性。所有FGM均在0.9%NaCl溶液中经历了具有高的腐蚀性的优异腐蚀响应。铬(Cr)形式的重分散SS至HA使基质Cr缺陷。 SS和HA界面周围的铬耗尽区导致FGMS在0.1M HCl溶液中的积极腐蚀行为。微型HA的FGMS证明了比其他FGM的腐蚀性更好。在浸入模拟体液(SBF)溶液中7天后,在具有微小尺寸HA的FGMS表面上形成的磷灰石层具有成熟的球形形态和叶片,如其他两个FGM。磷灰石形态和获得的重量结果证明了微大型HA增强FGM的最高生物活性。 (c)2015 Elsevier Ltd和Techna Group S.R.L.版权所有。

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