20th Innovative Manufacturing Engineering and Energy Conference | |
TiO2 nanostructured surfaces for biomedical applications developed by electrochemical anodization | |
机械制造;能源学 | |
Strnad, G.^1 ; Petrovan, C.^2 ; Russu, O.^3 ; Jakab-Farkas, L.^4 | |
Faculty of Engineering, Petru Maior University, Tirgu Mures, Romania^1 | |
Faculty of Dental Medicine, University of Medicine and Pharmacy, Tirgu Mures, Romania^2 | |
Faculty of Medicine, University of Medicine and Pharmacy, Tirgu Mures, Romania^3 | |
Faculty of Technical and Human Sciences, University Sapientia, Tirgu Mures, Romania^4 | |
关键词: Anodization process; Anodization time; Biomedical applications; Electro-chemical anodization; Internal diameters; Nanostructured oxides; Nanostructured surface; Ti6al4v titanium alloys; | |
Others : https://iopscience.iop.org/article/10.1088/1757-899X/161/1/012051/pdf DOI : 10.1088/1757-899X/161/1/012051 |
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来源: IOP | |
【 摘 要 】
Present research demonstrates the formation of self-ordered nanostructured oxide layer on the surface of two phase Ti6Al4V alloy by using electrochemical anodization in H3PO4/HF electrolytes. Our results show that the ordered oxide nanotubes grow on large areas on the samples surface, on both phases of (α+β) Ti6Al4V titanium alloy. We developed nanotubes of 70 nm (internal diameter) using 0.3 wt% HF and of 80 nm using 0.5 wt% HF additions to 1M H3PO4, at an anodization potential of 20 V, and an anodization time of 2 hours. We show that anodization potential has a strong influence on nanostructures morphology. Our results show that nanotubes' internal diameter is ∼30 nm at 10 V potential, ∼40 nm at 15 V potential, and ∼70-80 nm at 20 V potential in anodization process performed in 1M H3PO4+ 0.5 wt% HF, 2 hours. The thickness of the developed nanostructured oxide layer is in 200-250 nm range.
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