School of Materials Science and Engineering, Zhengzhou University, Zhengzhou 450002, China.
Acta Biomater. 2010 May;6(5):1743-8. doi: 10.1016/j.actbio.2009.12.009. Epub 2009 Dec 22.
The key to manufacturing magnesium-based alloys that are suitable as biodegradable orthopaedic implants is how to adjust their degradation rates and mechanical integrity in the physiological environment. In this study, to solve this challenge, a soluble Ca-deficient hydroxyapatite (Ca-def HA) coating was deposited on an Mg-Zn-Ca alloy substrate by pulse eletrodeposition. This deposition can be demonstrated by X-ray diffractometry and energy dispersion spectroscopy analyses, and the Ca/P atomic ratio of as-deposited coating is about 1.33 (within the range from 1.33 to 1.65). By regulating the appropriate pulse amplitude and width, the Ca-def HA coating shows better adhesion to Mg-Zn-Ca alloy, whose lap shear strength is increased to 41.8+/-2.7 MPa. Potentiodynamic polarization results in Kokubo's simulated body fluid (SBF) indicate that the corrosion potential of Mg alloy increases from -1645 to -1414 mV, while the corrosion current density decreases from 110 to 25 microA/cm(2), which illustrates that the Ca-def HA coating improves the substrate corrosion resistance significantly. Since orthopaedic implants generally serve under conditions of stress corrosion, the mechanical integrity of the Mg-Zn-Ca alloy was measured using the slow strain rate tensile (SSRT) testing technique in SBF. The SSRT results show that the ultimate tensile strength and time of fracture for the coated Mg-Zn-Ca alloy are higher than those of the uncoated one, which is beneficial in supporting fractured bone for a longer time. Thus Mg-Zn-Ca alloy coated with Ca-def HA is be a promising candidate for biodegradable orthopaedic implants, and is worthwhile to further investigate the in vivo degradation behavior.
制造适合可生物降解骨科植入物的镁基合金的关键是如何调整其在生理环境中的降解率和机械完整性。在这项研究中,为了解决这一挑战,通过脉冲电沉积在 Mg-Zn-Ca 合金基底上沉积了一种可溶解的缺钙羟基磷灰石(Ca-def HA)涂层。X 射线衍射和能量色散光谱分析可以证明这种沉积,并且沉积涂层的 Ca/P 原子比约为 1.33(在 1.33 到 1.65 范围内)。通过调节适当的脉冲幅度和宽度,Ca-def HA 涂层显示出对 Mg-Zn-Ca 合金更好的附着力,其搭接剪切强度增加到 41.8+/-2.7 MPa。在 Kokubo 模拟体液(SBF)中的动电位极化结果表明,镁合金的腐蚀电位从-1645 增加到-1414 mV,而腐蚀电流密度从 110 降低到 25 microA/cm(2),这表明 Ca-def HA 涂层显著提高了基底的耐腐蚀性。由于骨科植入物通常在应力腐蚀条件下使用,因此使用 SBF 中的慢应变速率拉伸(SSRT)测试技术测量 Mg-Zn-Ca 合金的机械完整性。SSRT 结果表明,涂层 Mg-Zn-Ca 合金的极限拉伸强度和断裂时间均高于未涂层的,这有利于更长时间地支撑断裂的骨骼。因此,缺钙羟基磷灰石涂层的 Mg-Zn-Ca 合金是一种有前途的可生物降解骨科植入物候选材料,值得进一步研究体内降解行为。