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Electrochemical Corrosion and In Vitro Bioactivity of Nano-Grained Biomedical Ti-20Nb-13Zr Alloy in a Simulated Body Fluid

机译:纳米颗粒生物医学Ti-20Nb-13Zr合金在模拟体液中的电化学腐蚀和体外生物活性。

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摘要

The bioactivity and the corrosion protection for a novel nano-grained Ti-20Nb-13Zr at % alloy were examined in a simulated body fluid (SBF). The effect of the SPS’s temperature on the corrosion performance was investigated. The phases and microstructural details of the developed alloy were analyzed by XRD (X-ray Diffraction), SEM (Scanning Electron Microscopy), and TEM (Transmission Electron Microscope). The electrochemical study was investigated using linear potentiodynamic polarization and electrochemical impedance spectroscopy in a SBF, and the bioactivity was examined by immersing the developed alloy in a SBF for 3, 7, and 14 days. The morphology of the depositions after immersion was examined using SEM. Alloy surface analysis after immersion in the SBF was characterized by XPS (X-ray Photoelectron Spectroscopy). The results of the bioactivity test in SBF revealed the growth of a hydroxyapatite layer on the surface of the alloy. The analysis of XPS showed the formation of protective oxides of TiO2, Ti2O3, ZrO2, Nb2O5, and a Ca3(PO4)2 compound (precursor of hydroxyapatite) deposited on the alloy surface, indicating that the presented alloy can stimulate bone formation. The corrosion resistance increased by increasing the sintering temperature and the highest corrosion resistance was obtained at 1200 °C. The improved corrosion protection was found to be related to the alloy densification. The bioactivity and the corrosion resistance of the developed nanostructured alloy in a SBF renders the nanostructured Ti-20Nb-13Zr alloy a promising candidate as an implant material.
机译:在模拟体液(SBF)中检查了新型纳米级Ti-20Nb-13Zr at%合金的生物活性和腐蚀防护。研究了SPS温度对腐蚀性能的影响。通过XRD(X射线衍射),SEM(扫描电子显微镜)和TEM(透射电子显微镜)分析了所开发合金的相和微观结构细节。使用线性势能极化和电化学阻抗谱在SBF中研究电化学研究,并通过将开发的合金浸入SBF中3、7和14天来检查生物活性。使用SEM检查浸没后的沉积物的形态。浸入SBF后的合金表面分析通过XPS(X射线光电子能谱)进行表征。 SBF中生物活性测试的结果表明,合金表面上有羟基磷灰石层的生长。 XPS的分析表明,沉积在合金表面的TiO2,Ti2O3,ZrO2,Nb2O5和Ca3(PO4)2化合物(羟基磷灰石的前体)形成了保护性氧化物,表明所提出的合金可以刺激骨骼形成。通过提高烧结温度来提高耐腐蚀性,并且在1200℃下获得最高的耐腐蚀性。发现改善的腐蚀防护与合金致密化有关。在SBF中开发的纳米结构合金的生物活性和耐腐蚀性使纳米结构Ti-20Nb-13Zr合金成为有前途的候选植入材料。

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