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Synthesis Characterization Corrosion Resistance and In-Vitro Bioactivity Behavior of Biodegradable Mg–Zn–Mn–(Si–HA) Composite for Orthopaedic Applications

机译:骨科应用中可生物降解的Mg-Zn-Mn-(Si-HA)复合材料的合成表征耐蚀性和体外生物活性

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摘要

Recently, magnesium (Mg) has gained attention as a potential material for orthopedics devices, owing to the combination of its biodegradability and similar mechanical characteristics to those of bones. However, the rapid decay rate of Mg alloy is one of the critical barriers amongst its widespread applications that have provided numerous research scopes to the scientists. In this present, porous Mg-based biodegradable structures have been fabricated through the hybridization of elemental alloying and spark plasma sintering technology. As key alloying elements, the suitable proportions of silicon (Si) and hydroxyapatite (HA) are used to enhance the mechanical, chemical, and geometrical features. It has been found that the addition of HA and Si element results in higher degree of structural porosity with low elastic modulus and hardness of the Mg–Zn–Mn matrix, respectively. Further, addition of both HA and Si elements has refined the grain structure and improved the hardness of the as-fabricated structures. Moreover, the characterization results validate the formation of various biocompatible phases, which enhances the corrosion performance and biomechanical integrity. Moreover, the fabricated composites show an excellent bioactivity and offer a channel/interface to MG-63 cells for attachment, proliferation and differentiation. The overall results of the present study advocate the usefulness of developed structures for orthopedics applications.
机译:近年来,由于镁(Mg)的生物降解性和与骨骼相似的机械特性,它们已成为骨科器械的潜在材料。然而,镁合金的快速衰减速率是其广泛应用中的关键障碍之一,为科学家提供了广泛的研究范围。在目前,通过元素合金化和火花等离子体烧结技术的杂交已经制造了基于多孔镁的可生物降解结构。作为关键的合金元素,适当比例的硅(Si)和羟基磷灰石(HA)用于增强机械,化学和几何特征。已经发现,添加HA和Si元素会导致较高的结构孔隙度,而Mg-Zn-Mn基体的弹性模量和硬度分别较低。此外,同时添加HA和Si元素可细化晶粒结构并改善制成结构的硬度。此外,表征结果验证了各种生物相容相的形成,这增强了腐蚀性能和生物力学完整性。此外,所制造的复合材料显示出极好的生物活性,并为MG-63细胞提供了附着,增殖和分化的通道/界面。本研究的总体结果提倡发达结构在骨科应用中的有用性。

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