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首页> 外文期刊>Applied Surface Science >Structural and morphological characterization of Ti_6Al_4V alloy surface functionalization based on Nb_2O_5 thin film for biomedical applications
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Structural and morphological characterization of Ti_6Al_4V alloy surface functionalization based on Nb_2O_5 thin film for biomedical applications

机译:基于Nb_2O_5薄膜的Ti_6Al_4V合金表面官能化的结构和形态学表征薄膜生物医学应用

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摘要

This paper proposes an applied and innovative research for the development of Nb2O5 thin film on the Ti6Al4V alloy surface with great prospects of being used in the biomedical area. Thin films of Nb2O5 have been deposited on the Ti6Al4V alloy surface by using the reactive sputtering technique. The system was characterized morphologically and structurally via SEM/EDX, AFM, FTIR, Raman spectroscopy and XPS. Interfacial tension theory was used for the determination of the surface free energy and showed that the treated surface became more hydrophilic when compared to the bare material. The high-resolution X-ray photoelectron spectra from Nb 3d and O 1s core-levels demonstrate unequivocally the presence of a single-phase Nb2O5. Cytotoxicity and biocompatibility (VERO-CCL-81 cell line) tests as well as analyzes of inflammatory responses with Human blood leukocyte cells were also performed by showing that Nb2O5 coating reduced both Ti6Al4V alloy toxicity and its inflammation induction besides increasing the anti-inflammatory cytokine levels. Since the surface functionalization resulted in both higher biocompatibility and tolerance by immune cells besides low inflammatory levels concerning the base material, we present a superior material with wide spectra of usage in the biomedical area.
机译:本文提出了一种应用和创新研究Ti6Al4V合金表面上的NB2O5薄膜,具有在生物医学区域使用的巨大前景。通过使用反应性溅射技术沉积NB2O5的薄膜在Ti6Al4V合金表面上。该系统在结构上具有形态学,通过SEM / EDX,AFM,FTIR,拉曼光谱和XPS在结构上表征。界面张力理论用于测定表面自由能,并显示与裸材料相比,处理过的表面变得更加亲水。来自Nb 3D和O 1S核心水平的高分辨率X射线光电子能谱明确地表明了单相Nb2O5的存在。还通过表明Nb 2 O 5涂层减少了Ti6Al4V合金毒性,除了增加抗炎细胞因子水平之外,通过表明NB2O5涂层及其炎症诱导,还进行细胞毒性和生物相容性(Vero-Ccl-81细胞系)测试以及对人血白细胞细胞的炎症反应的分析。除了增加抗炎细胞因子水平之外,其炎症诱导。由于表面官能化除了具有基础材料的低炎性水平之外,由于基材的低炎症水平,因此均有较高的生物相容性和耐受性,因此在生物医学区域中呈现出具有广泛使用光谱的优异材料。

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