首页> 美国卫生研究院文献>Journal of Functional Biomaterials >Fabrication and Characterization of Nanoporous Niobia and Nanotubular Tantala Titania and Zirconia via Anodization
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Fabrication and Characterization of Nanoporous Niobia and Nanotubular Tantala Titania and Zirconia via Anodization

机译:阳极氧化法制备和表征纳米多孔纳米比亚和纳米管塔塔拉二氧化钛和氧化锆

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摘要

Valve metals such as titanium (Ti), zirconium (Zr), niobium (Nb) and tantalum (Ta) that confer a stable oxide layer on their surfaces are commonly used as implant materials or alloying elements for titanium-based implants, due to their exceptional high corrosion resistance and excellent biocompatibility. The aim of this study was to investigate the bioactivity of the nanostructures of tantala (Ta2O5), niobia (Nb2O5), zirconia (ZrO2) and titania (TiO2) in accordance to their roughness and wettability. Therefore, four kinds of metal oxide nanoporous and nanotubular Ta2O5, Nb2O5, ZrO2 and TiO2 were fabricated via anodization. The nanosize distribution, morphology and the physical and chemical properties of the nanolayers and their surface energies and bioactivities were investigated using SEM-EDS, X-ray diffraction (XRD) analysis and 3D profilometer. It was found that the nanoporous Ta2O5 exhibited an irregular porous structure, high roughness and high surface energy as compared to bare tantalum metal; and exhibited the most superior bioactivity after annealing among the four kinds of nanoporous structures. The nanoporous Nb2O5 showed a uniform porous structure and low roughness, but no bioactivity before annealing. Overall, the nanoporous and nanotubular layers of Ta2O5, Nb2O5, ZrO2 and TiO2 demonstrated promising potential for enhanced bioactivity to improve their biomedical application alone or to improve the usage in other biocompatible metal implants.
机译:钛(Ti),锆(Zr),铌(Nb)和钽(Ta)等能在其表面上形成稳定氧化物层的阀金属通常用作钛基植入物的植入物材料或合金元素出色的高耐腐蚀性和出色的生物相容性。这项研究的目的是根据其粗糙度和润湿性,研究钽(Ta2O5),氧化铌(Nb2O5),氧化锆(ZrO2)和二氧化钛(TiO2)的纳米结构的生物活性。因此,通过阳极氧化制备了四种金属氧化物纳米多孔和纳米管形的Ta2O5,Nb2O5,ZrO2和TiO2。使用SEM-EDS,X射线衍射(XRD)分析和3D轮廓仪测量了纳米层的纳米尺寸分布,形态,物理和化学性质及其表面能和生物活性。发现与多孔钽金属相比,纳米多孔Ta 2 O 5具有不规则的多孔结构,高粗糙度和高表面能。在四种纳米孔结构中,退火后表现出最优异的生物活性。纳米多孔Nb2O5表现出均匀的多孔结构和低粗糙度,但在退火前没有生物活性。总体而言,Ta 2 O 5 ,Nb 2 O 5 ,ZrO 的纳米多孔和纳米管层2 和TiO 2 具有增强生物活性的潜力,有望改善其单​​独的生物医学应用或改善在其他生物相容性金属植入物中的使用。

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