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首页> 外文期刊>Surface & Coatings Technology >Hydrothermal deposition of high strength calcium phosphate coatings on magnesium alloy for biomedical applications
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Hydrothermal deposition of high strength calcium phosphate coatings on magnesium alloy for biomedical applications

机译:高强度磷酸钙涂料对生物医学应用镁合金的水热沉积

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Magnesium and Mg-alloys are suitable replacement to metallic implants (Titanium, stainless steel, Co-Cr alloys) in terms of stress shielding effect and repeated surgery requirement. However, the only hindrance in their successful use as biodegradable orthopedic implants is their high corrosion rates in physiological environment. Thus, in present study, we developed the single step hydrothermal process to deposit bioactive coatings that may lower the corrosion rate. Highly crystalline, cytocompatible, bioresorbable and high strength monetite (CaHPO4) coating successfully produced on Ca-containing Mg-alloy via hydrothermal process. Deposition parameters have significant influence on coatings morphology and degree of crystallinity. XRD pattern indicates sharp, intense and well-defined peaks of monetite along with minor peaks of brucite and spinel phases. SEM study reveals that compact and defects free coatings were deposited at 100 degrees C. FTIR analysis showed all characteristic peaks that confirms the presence of monetite. Corrosion behavior of coated and uncoated specimen were analyzed using potentiodynamic polarization scan in simulated body fluid (SBF) at 37 degrees C. Calcium phosphate (CaP) coating significantly improve the degradation rate of Mg-alloy. Corrosion rate was 80% lower in CaP coated Mg-alloy specimens than bare Mg-alloy. Adhesion strength of coatings was determined using lap shear test demonstrating a cohesive failure at 21.89 MPa stress. Furthermore, cytotoxicity of coated and uncoated alloy was assessed by using Alamar Blue (AB) assay on NIH3T3 mouse fibroblast cell line for 9 days indicate no significant difference in proliferation of cells for CaP coated Mg-alloy and positive control. These results suggest that hydrothermal method reported here can potentially be used to deposit compact, highly crystalline, bioresorbable, cytocompatible and protective coatings with high adhesion strength on intricate geometries for degradable implant applications.
机译:镁和Mg-合金在应力屏蔽效果和重复的手术要求方面适合于金属植入物(钛,不锈钢,CO-CR合金)。然而,作为可生物降解的骨科植入物成功使用的唯一障碍是它们在生理环境中的高腐蚀速率。因此,在本研究中,我们开发了单步水热过程,以沉积可能降低腐蚀速率的生物活性涂层。通过水热法在含Ca的Mg-合金上成功生产高度结晶,细胞势型,可生物相容性和高强度的涂料(CaHPO4)涂层。沉积参数对涂层形态和结晶度的程度具有显着影响。 XRD图案表明粉末,强烈且明确定义的碳酸盐峰以及斑块和尖晶石阶段的次要峰。 SEM研究表明,在100摄氏度下沉积紧凑型和缺陷的自由涂层。FTIR分析显示了确认氟钛矿存在的所有特征峰。在37摄氏度下使用型电位偏振扫描(SBF)在37℃下进行涂覆和未涂覆标本的腐蚀行为。磷酸钙(帽)涂层显着提高Mg-合金的降解速率。帽涂覆的Mg-合金标本腐蚀速率低于裸Mg-合金。使用LAP剪切试验测定涂层的粘合强度,证明了21.89MPa应力的粘性衰竭。此外,通过在NIH3T3小鼠成纤维细胞系上使用Alamar Blue(AB)测定来评估涂覆和未涂覆合金的细胞毒性9天表示帽涂覆的Mg-合金和阳性对照的细胞增殖没有显着差异。这些结果表明,这里报道的水热方法可能用于沉积具有高粘附强度的紧凑,高度结晶,可生物,细胞势互相竞争和保护涂层,在复杂的几何形状上进行高粘附强度,用于可降解的植入应用。

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