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Laser surface modification of Mg-Gd-Ca alloy for corrosion resistance and biocompatibility enhancement

机译:Mg-Gd-Ca合金的激光表面改性,以提高耐腐蚀性和生物相容性

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Magnesium alloy has attracted much attention as biodegradable material for medical devices including implants and stents in recent years. However, poor corrosion resistance is the main problem to limit practical applications because high degradation rate will cause fast increase in pH, while the large release of ions into the medium can lead to cytotoxicity. In this work, we demonstrate the capability of laser surface modification for better corrosion resistance of Mg-Gd-Ca alloy to avoid rapid degradation, which helps to enhance the biocompatibility. Microstructure of both as-received surface and laser-modified surface were analyzed carefully by Scanning Electron Microscopy and X-ray Diffraction. Electrochemical corrosion behavior and immersion test was investigated in order to examine the degradable behavior of laser-modified Mg-Gd-Ca alloy. The enhanced corrosion resistance was found to be caused by the combined effect of the dissolution of secondary phase and the decrease of galvanic corrosion in the laser-modified zone. Moreover, results of direct cell culturing suggested that the laser-modified surface exhibited good cell adhesion property, spreading performance and proliferation capacity. (C) 2018 Elsevier B.V. All rights reserved.
机译:近年来,镁合金作为医疗设备的生物可降解材料受到了广泛关注,包括植入物和支架。但是,耐蚀性差是限制实际应用的主要问题,因为高降解速率会导致pH值快速升高,而离子大量释放到培养基中会导致细胞毒性。在这项工作中,我们展示了激光表面改性的功能,可以使Mg-Gd-Ca合金具有更好的耐腐蚀性,从而避免快速降解,从而有助于增强生物相容性。通过扫描电子显微镜和X射线衍射仔细地分析了接收表面和激光改性表面的微观结构。为了研究激光改性的Mg-Gd-Ca合金的可降解行为,研究了电化学腐蚀行为和浸没测试。发现增强的耐腐蚀性是由于次级相的溶解和激光改性区电偶腐蚀减少的综合作用所致。此外,直接细胞培养的结果表明,激光修饰的表面表现出良好的细胞粘附性能,扩散性能和增殖能力。 (C)2018 Elsevier B.V.保留所有权利。

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