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Magnesium implant alloy with low levels of strontium and calcium: The third element effect and phase selection improve bio-corrosion resistance and mechanical performance

机译:锶和钙含量低的镁植入合金:第三元素效应和相选择可提高抗生物腐蚀性和机械性能

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摘要

Low density, non-toxicity, biodegradability and mechanical properties similar to human tissues such as bone make magnesium (Mg) alloys attractive for biomedical applications ranging from bone to cardiovascular implants. The most important challenge that still prevents the widespread use of Mg implants is their rapid degradation rate. In this study we investigate the combined effect of calcium (Ca) and strontium (Sr) on the corrosion behavior of Mg via in vitro immersion and electrochemical tests in simulated body fluid (SBF), and analyze changes inmechanical properties.We show that the combined addition of 0.3 wt.% Sr and 0.4 wt.% Ca decreases the corrosion rate of Mg both in terms of mass loss and hydrogen evolution more effectively than the single addition of either alloying element. We investigate the microstructure of as-cast specimens and the morphology of the corrosion products using optical microscopy, scanning electronmicroscopy, electron probemicro-analysis, X-ray diffraction, and X-ray photoelectron spectroscopy. Tensile and three point bending tests reveal that the ternary alloy Mg–0.3Sr–0.3Ca has a good combination of mechanical properties and corrosion resistance with hydrogen evolution rates of 0.01 mL/cm~2/h in SBF. Higher concentrations of Sr and Ca alter the resulting microstructure leading to increased corrosion rates in SBF by promoting the micro-galvanic corrosion between the α-Mg matrix and intermetallic phases of Mg_(17)Sr_2 and Mg_2Ca along the grain boundaries. These results indicate that the combined addition of optimal amounts of Ca and Sr is a promising approach to decrease the high degradation rate of Mg implants in physiological conditions, as well as attaining high ductility in the alloy. The better properties of the Mg–0.3Sr–0.3Ca alloy are related to the new intermetallic phases found in this sample. The optimum composition is attributed to the "third element effect", as seen in the corrosion behavior of metallic alloys.
机译:与人体组织(如骨骼)相似的低密度,无毒,可生物降解性和机械性能使镁(Mg)合金吸引了从骨骼到心血管植入物的生物医学应用。仍然阻碍镁植入物广泛使用的最重要的挑战是它们的快速降解速率。在这项研究中,我们通过在模拟体液(SBF)中进行体外浸没和电化学测试,研究了钙(Ca)和锶(Sr)对Mg腐蚀行为的综合影响,并分析了力学性能的变化。与仅添加任一种合金元素相比,就质量损失和析氢而言,添加0.3wt。%的Sr和0.4wt。%的Ca降低了Mg的腐蚀速率。我们使用光学显微镜,扫描电子显微镜,电子探针显微分析,X射线衍射和X射线光电子能谱研究铸态标本的微观结构和腐蚀产物的形态。拉伸和三点弯曲试验表明,三元合金Mg–0.3Sr–0.3Ca具有良好的机械性能和耐蚀性,在SBF中的析氢速率为0.01 mL / cm〜2 / h。较高的Sr和Ca浓度通过促进α-Mg基质与沿晶界的Mg_(17)Sr_2和Mg_2Ca的金属间相之间的微电偶腐蚀,从而改变了所得的微结构,从而提高了SBF的腐蚀速率。这些结果表明,最佳量的Ca和Sr的组合添加是降低在生理条件下Mg植入物的高降解速率以及在合金中实现高延展性的有前途的方法。 Mg–0.3Sr–0.3Ca合金的更好性能与该样品中发现的新金属间相有关。如在金属合金的腐蚀行为中所见,最佳组成归因于“第三元素效应”。

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