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Synergistic effect of deep ball burnishing and HA coating on surface integrity, corrosion and immune response of biodegradable AZ31B Mg alloys

机译:深球抛光和HA涂层对生物降解AZ31B镁合金表面完整性,腐蚀和免疫应答的协同作用

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The fast degradation and consequent loss of mechanical integrity is a major problem of biodegradable Mg alloy, which limits its clinical viability. This paper presents the influence of a synergistic approach combining deep ball burnishing and hydroxyapatite (HA) coating on biomechanical integrity, degradation and immune response of Mg alloy (AZ31B). The burnishing resulted in smooth surface topography, increased hardness from 0.87 to 1.45 GPa and induced microstructural disturbances with deformation twins/twin bands, which enabled formation of a dense and compact platelet-like crystals HA coating of 110 mu m thickness. Compared to the untreated and burnished specimens, the burnished + HA coated surface provided remarkably higher corrosion resistance as indicated by lower corrosion current density and smaller mass loss. HA coating and surface integrity enhancement by burnishing were predominantly responsible for improved corrosion resistance. HA coating on the burnished surface exhibited hydrophilic properties and adequate bonding strength. While the modified surfaces promoted cell growth, the burnished + HA surface outperformed in exhibiting less pro-inflammatory and high anti-inflammatory cytokines, demonstrating that the treated surfaces were not posing any threat to immune cells. The findings indicate that the synergistic surface treatment can be a viable means to enhance corrosion resistance and immune response of Mg alloys implants.
机译:快速降解和随后的机械完整性丧失是可生物降解的Mg合金的主要问题,这限制了其临床活力。本文提出了一种协同方法与羟基磷灰石(HA)涂层相结合的生物力学完整性,降解和免疫应答的影响。镁合金(AZ31B)的生物力学完整性,降解和免疫应答。抛光导致表面形貌的光滑,增加了0.87至1.45GPa的硬度,并诱导了具有变形双胞胎/双带的微观结构紊乱,使得形成致密且紧凑的片状晶体HA涂层110μmm厚度。与未经处理的和抛光的标本相比,抛光+ HA涂层表面提供明显更高的耐腐蚀性,如较低的腐蚀电流密度和更小的质量损失所示。通过抛光的HA涂层和表面完整性提高主要负责改善耐腐蚀性。抛光表面上的HA涂层表现出亲水性和足够的粘合强度。虽然改性表面促进细胞生长,但在表现出较少的促炎和高抗炎细胞因子方面,抛光+ HA表面表明处理过的表面不会对免疫细胞构成任何威胁。结果表明,协同表面处理可以是增强镁合金植入物的耐腐蚀性和免疫应答的可行性手段。

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