Zinc-Magnesium alloy as a degradable bone plate

Khaled Waly, M. Elwakad, Madyha Shoieb, M. Mousa, Amal S. Eldesoky
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Abstract

Medical degradable bone plates faced many challenges as toxicity, degradation rate and mechanical properties. Magnesium alloys as first degradable plates have many problems. Zinc alloys also suffer from toxicity of degradation product. In this paper, Zinc-based alloys with different ratios of Mg (magnesium) were fabricated to find the best combatable degradable bone plate for medical applications. Zinc with Mg (0.5, 1.0, 1.5 and 2.0 wt. %) were prepared. In-vitro study. effect on cell viability, adhesion, cellgrowth, and degradation tests of Zinc- XMg alloys were done. Mechanical Compatibility and Microstructure of Zn-XMg were investigated using SEM (scanning electron microscope) and EDS (energy dispersive spectrometer). The results of the analyzed alloys' compositions showed that Zn-xMg were comparable. Microstructurally, all fabricated alloys had a dendritic structure of Mg + MgZn matrix. When the percentage of Mg wt.% increased to one, small elongated particles were appeared obviously at grain boundaries. The presence of Mg + MgZn mixture in the structure effects on mechanical properties. Compression strength of Zn–Mg alloy were enhanced from 65-75 MPa for pure zinc to 600 MPa and 620 for Zn–0.5 Mg alloy and Zn–2Mg alloy. High hardness and wear resistance were observed for alloy with 0.5% Mg. Tensile strength of Zn-Mg alloy were enhanced from 39 MPa for pure zinc to 320 MPa and 300 MPa for Zn-0.5 Mg alloy and Zn-2Mg alloy. For all the investigated alloys, the degradation rate values were increased with increasing amount of Mg %,. On the contrary, the results of mechanical properties showed that the highest ultimate tensile strength value was recorded when Mg wt. % was (0.5). Electrochemical measurements show degradation rates ranged from 0.038 to 0.45mm/year with no toxicity on cell. So, it has great advantage that maintain high strength for long period till restoring damaged bone. Cell viability, adhesion and cell growth were significantly high for Zn- 0.5Mg. Evidently, the fabricated Zn-0.5Mg alloy is a novel biodegradable plate for biomedical orthopedic application. Its mechanical properties improved using 0.5Mg.% which acts as areinforced material for zn plate. This component of alloy exhibit the suitable degradation rate with no toxicity, mechanical strength, surface properties that needed to encourage cells and minerals to form a new bone.
锌镁合金作为可降解的骨板
医用可降解骨板在毒性、降解速率和力学性能等方面面临诸多挑战。镁合金作为第一可降解板存在许多问题。锌合金还存在降解产物的毒性。本文制备了不同镁含量的锌基合金,以寻找可降解的医用骨板。分别制备含Mg(0.5、1.0、1.5和2.0 wt. %)的锌。体外研究。对锌- XMg合金的细胞活力、粘附、细胞生长和降解进行了实验研究。采用扫描电镜(SEM)和能谱仪(EDS)研究了Zn-XMg的力学相容性和微观结构。分析结果表明,Zn-xMg合金的成分具有可比性。显微组织上,所有合金均为Mg + MgZn基体的枝晶组织。当Mg wt.%增加到1时,晶界处出现了明显的细长小颗粒。组织中Mg + MgZn混合物的存在对力学性能有影响。Zn-Mg合金的抗压强度由纯锌的65 ~ 75 MPa提高到Zn-0.5 Mg合金和Zn-2Mg合金的600 MPa和620 MPa。添加0.5% Mg的合金具有较高的硬度和耐磨性。锌镁合金的抗拉强度由纯锌的39 MPa提高到锌-0.5 Mg合金和锌- 2mg合金的320 MPa和300 MPa。所有合金的降解率值均随Mg %的增加而增加。相反,力学性能结果表明,当Mg wt. %为(0.5)时,极限抗拉强度值最高。电化学测量表明,降解率为0.038 ~ 0.45mm/年,对细胞无毒性。因此,它具有长时间保持高强度直至损伤骨恢复的优势。Zn- 0.5Mg显著提高了细胞活力、粘附力和细胞生长。由此可见,所制备的锌-0.5 mg合金是一种新型的生物可降解板,可用于生物医学骨科。添加0.5Mg后,其力学性能得到改善。%,作为锌板的增强材料。这种合金成分表现出合适的降解率,没有毒性,机械强度,表面特性,需要鼓励细胞和矿物质形成一个新的骨头。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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