Corrosion resistance of titanium dioxide anodic coatings on Ti-6Al-4V

The Ti-6Al-4V alloy is used for biomedical implants due to its corrosion resistance and biocompatibility, associated with the spontaneous formation of TiO2 oxide. However, the native film may be flawed and after some time of implantation in the body it may release metal ions. Oxides of higher thickn...

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Autor principal: Vera, M.L
Otros Autores: Linardi, E., Lanzani, L., Mendez, C., Schvezov, C.E, Ares, Alicia Esther
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: Wiley-VCH Verlag 2015
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100 1 |a Vera, M.L. 
245 1 0 |a Corrosion resistance of titanium dioxide anodic coatings on Ti-6Al-4V 
260 |b Wiley-VCH Verlag  |c 2015 
270 1 0 |m Vera, M.L.; Instituto de Materiales de Misiones (IMAM), CONICET-UNaM, Félix de Azara 1552 (3300), Argentina 
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506 |2 openaire  |e Política editorial 
520 3 |a The Ti-6Al-4V alloy is used for biomedical implants due to its corrosion resistance and biocompatibility, associated with the spontaneous formation of TiO2 oxide. However, the native film may be flawed and after some time of implantation in the body it may release metal ions. Oxides of higher thickness than naturally grown can be produced by anodic oxidation. The objective of this study was to evaluate the corrosion resistance of anodic TiO2 coatings, evaluating the influence of the thickness and crystalline structure of the coatings. Amorphous coatings were obtained from 27 to 140 nm that crystallized in anatase and rutile phases by heat treatment. The corrosion resistance was evaluated by potentiodynamic measurements in 0.9% sodium chloride, which is the main component of physiological solution. Evaluation of the electrochemical parameters showed that anodic coatings are more efficient barrier than the natural TiO2 oxide. As the oxidation processes influenced the electrochemical properties of metals by altering the resistance to corrosion, therefore they become important to study the electrochemical behavior of the oxides by electrochemical impedance spectroscopy. © 2014 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.  |l eng 
593 |a Instituto de Materiales de Misiones (IMAM), CONICET-UNaM, Félix de Azara 1552 (3300), Posadas, Misiones, Argentina 
593 |a Facultad de Ciencias Exactas, Químicas y Naturales, Universidad Nacional de Misiones (UNaM), Félix de Azara 1552 (3300), Posadas, Misiones, Argentina 
593 |a Centro Atõmico Constituyentes (CAC-CNEA), Av. Gral. Paz 1499 (1650), San Martín, Buenos Aires, Argentina 
593 |a Instituto Sabato, Universidad Nacional de San MartínComisiõn Nacional de Energía Atõmica, Av. Gral. Paz 1499 (1650), San Martín, Buenos Aires, Argentina 
650 1 7 |2 spines  |a CORROSION 
690 1 0 |a ANODIC OXIDATION 
690 1 0 |a CORROSION RESISTANCE 
690 1 0 |a TI-6AL-4V 
690 1 0 |a TITANIUM DIOXIDE COATING 
690 1 0 |a ALUMINUM 
690 1 0 |a ALUMINUM COATINGS 
690 1 0 |a BIOCOMPATIBILITY 
690 1 0 |a COATINGS 
690 1 0 |a CORROSION RESISTANCE 
690 1 0 |a ELECTROCHEMICAL IMPEDANCE SPECTROSCOPY 
690 1 0 |a METAL IONS 
690 1 0 |a METALS 
690 1 0 |a OXIDATION 
690 1 0 |a OXIDE MINERALS 
690 1 0 |a OXIDES 
690 1 0 |a PROTECTIVE COATINGS 
690 1 0 |a TITANIUM 
690 1 0 |a TITANIUM ALLOYS 
690 1 0 |a TITANIUM DIOXIDE 
690 1 0 |a TITANIUM OXIDES 
690 1 0 |a BIOMEDICAL IMPLANTS 
690 1 0 |a CRYSTALLINE STRUCTURE 
690 1 0 |a ELECTROCHEMICAL BEHAVIORS 
690 1 0 |a ELECTROCHEMICAL PARAMETERS 
690 1 0 |a PHYSIOLOGICAL SOLUTION 
690 1 0 |a POTENTIODYNAMIC MEASUREMENT 
690 1 0 |a SPONTANEOUS FORMATION 
690 1 0 |a TI-6 AL-4 V 
690 1 0 |a ANODIC OXIDATION 
700 1 |a Linardi, E. 
700 1 |a Lanzani, L. 
700 1 |a Mendez, C. 
700 1 |a Schvezov, C.E. 
700 1 |a Ares, Alicia Esther 
773 0 |d Wiley-VCH Verlag, 2015  |g v. 66  |h pp. 1140-1149  |k n. 10  |x 09475117  |t Mater. Corros. 
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