Physical-mechanical characterization of biodegradable Mg-3Si-HA composites

Q1 Social Sciences
C. Prakash, Sunpreet Singh, I. Farina, F. Fraternali, L. Feo
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引用次数: 13

Abstract

Purpose Porous implant surface is shown to facilitate bone in-growth and cell attachment, improving overall osteointegration, while providing adequate mechanical integrity. Recently, biodegradable material possessing such superior properties has been the focus with an aim of revolutionizing implant’s design, material and performance. This paper aims to present a comprehensive investigation into the design and development of low elastic modulus porous biodegradable Mg-3Si-5HA composite by mechanical alloying and spark plasma sintering (MA-SPS) technique. Design/methodology/approach This paper presents a comprehensive investigation into the design and development of low elastic modulus porous biodegradable Mg-3Si-5HA composite by MA-SPS technique. As the key alloying elements, HA powders with an appropriate proportion weight 5 and 10 are mixed with the base elemental magnesium (Mg) particles to form the composites of potentially variable porosity and mechanical property. The aim is to investigate the performance of the synthesized composites of Mg-3Si together with HA in terms of mechanical integrity hardness and Young’s moduli corrosion resistance and in-vitro bioactivity. Findings Mechanical and surface characterization results indicate that alloying of Si leads to the formation of fine Mg2 Si eutectic dense structure, hence increasing hardness while reducing the ductility of the composite. On the other hand, the allying of HA in Mg-3Si matrix leads to the formation of structural porosity (5-13 per cent), thus resulting in low Young’s moduli. It is hypothesized that biocompatible phases formed within the composite enhanced the corrosion performance and bio-mechanical integrity of the composite. The degradation rate of Mg-3Si composite was reduced from 2.05 mm/year to 1.19 mm/year by the alloying of HA elements. Moreover, the fabricated composites showed an excellent bioactivity and offered a channel/interface to MG-63 cells for attachment, proliferation and differentiation. Originality/value Overall, the findings suggest that the Mg-3Si-HA composite fabricated by MA and plasma sintering may be considered as a potential biodegradable material for orthopedic application.
可生物降解Mg-3Si-HA复合材料的物理力学特性
目的多孔种植体表面促进骨生长和细胞附着,改善整体骨整合,同时提供足够的机械完整性。近年来,具有这种优越性能的可生物降解材料已成为人们关注的焦点,其目的是彻底改变植入物的设计、材料和性能。本文旨在采用机械合金化和火花等离子烧结(MA-SPS)技术,对低弹性模量多孔可生物降解Mg-3Si-5HA复合材料的设计和研制进行全面研究。本文采用MA-SPS技术对低弹性模量多孔可生物降解Mg-3Si-5HA复合材料的设计和开发进行了全面的研究。将适当比例重量为5和10的羟基磷灰石粉末与基体元素镁(Mg)颗粒混合,形成孔隙率和力学性能变化较大的复合材料。目的是研究Mg-3Si与HA合成的复合材料在机械完整性、硬度、杨氏模量耐腐蚀性和体外生物活性方面的性能。力学和表面表征结果表明,Si的合金化导致形成细小的Mg2 Si共晶致密组织,从而提高了复合材料的硬度,同时降低了复合材料的延展性。另一方面,HA在Mg-3Si基体中的聚集导致结构孔隙的形成(5- 13%),从而导致低杨氏模量。假设复合材料内部形成的生物相容性相增强了复合材料的腐蚀性能和生物力学完整性。HA元素的合金化使Mg-3Si复合材料的降解速率从2.05 mm/年降低到1.19 mm/年。制备的复合材料具有良好的生物活性,为MG-63细胞的附着、增殖和分化提供了通道/界面。原创性/价值总体而言,研究结果表明,通过MA和等离子烧结制备的Mg-3Si-HA复合材料可能被认为是一种潜在的骨科生物降解材料。
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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来源期刊
CiteScore
9.40
自引率
0.00%
发文量
23
审稿时长
24 weeks
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