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Magnesium and magnesium alloys as degradable metallic biomaterials

机译:镁和镁合金作为可降解金属生物材料

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摘要

Drawbacks associated with permanent metallic implants lead to the search for degradable metallic biomaterials. Magnesium has been considered as it is essential to bodies and has a high biodegradation potential. For magnesium and its alloys to be used as biodegradable implant materials, their degradation rates should be consistent with the rate of healing of the affected tissue, and the release of the degradation products should be within the body's acceptable absorption levels. Conventional magnesium degrades rapidly, which is undesirable. In this study, biodegradation behaviours of high purity magnesium and commercial purity magnesium alloy AZ31 in both static and dynamic Hank's solution have been systematically investigated. The results show that magnesium purification and selective alloying are effective approaches to reduce the degradation rate of magnesium. In the static condition, the corrosion products accumulate on the materials surface as a protective layer, which results in a lower degradation rate than the dynamic condition. Anodised coating can significantly further reduce the degradation rate of magnesium. This study indicates that magnesium can be used as degradable implant materials as long as the degradation is controlled at a low rate. Magnesium purification, selective alloying and anodised coating are three effective approaches to reduce the rate of degradation.
机译:与永久金属植入物相关的缺点导致人们寻求可降解的金属生物材料。镁被认为是人体必需的元素,具有很高的生物降解潜力。对于镁及其合金用作可生物降解的植入物材料,其降解速率应与受影响组织的愈合速率一致,并且降解产物的释放应在人体可接受的吸收水平之内。常规镁迅速降解,这是不希望的。在这项研究中,系统地研究了高纯度镁和商业纯度镁合金AZ31在静态和动态Hank溶液中的生物降解行为。结果表明,镁的纯化和选择性合金化是降低镁降解速率的有效方法。在静态条件下,腐蚀产物作为保护层积聚在材料表面,与动态条件相比,其降解率更低。阳极氧化涂层可以大大降低镁的降解率。这项研究表明,只要将降解率控制在较低水平,镁就可以用作可降解的植入物材料。镁纯化,选择性合金化和阳极氧化涂层是降低降解速率的三种有效方法。

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  • 作者

    Wang H.; Shi Z. M.; Yang K.;

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  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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