Electrochemical Surface Nanostructuring of Ti47Cu38Fe2.5Zr7.5Sn2Si1Ag2 Metallic Glass for Improved Pitting Corrosion Resistance

被引:4
作者
Fernandez-Navas, Nora [1 ,2 ]
Querebillo, Christine Joy [1 ]
Tiwari, Kirti [3 ]
Hantusch, Martin [1 ]
Shtefan, Viktoriia [1 ,4 ]
Perez, Nicolas [1 ]
Rizzi, Paola [3 ]
Zimmermann, Martina [2 ]
Gebert, Annett [1 ]
机构
[1] Leibniz Inst Solid State & Mat Res Dresden Leibniz, Inst Mat Chem, Helmholtzstr 20, D-01069 Dresden, Germany
[2] Tech Univ Dresden, Fac Mech Sci & Engn, Helmholtzstr 10, D-01069 Dresden, Germany
[3] Univ Torino, Dipartimento Chim, V Giuria 7, I-10125 Turin, Italy
[4] Natl Tech Univ, Kharkiv Polytech Inst, Educ & Sci Inst Chem Technol & Engn, Kyrpychova Str 2, UA-61002 Kharkiv, Ukraine
关键词
dealloying; metallic glasses; pitting corrosion; surface treatments; Ti alloy; MECHANICAL-PROPERTIES; FORMING ABILITY; TI-CU; BIOCOMPATIBILITY; BEHAVIOR; ALLOYS; TITANIUM; STRESS; XPS; GA;
D O I
10.1002/adem.202302206
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Ti-based bulk metallic glasses are envisioned for human implant applications. Yet, while their elevated Cu content is essential for a high glass-forming ability, it poses biocompatibility issues, necessitating a reduction in near-surface regions. To address this, surface treatments that simultaneously generate protective and bioactive states, based on nanostructured Ti and Zr-oxide layers are proposed. An electrochemical pseudo-dealloying process using the bulk glass-forming Ti47Cu38Fe2.5Zr7.5Sn2Si1Ag2 alloy is defined. Melt-spun ribbons are immersed in hot concentrated nitric acid solution, monitoring the anodic polarization behavior. From the current density transient measurements, together with surface studies (field-emission scanning electron microscopy, transmission electron microscopy, and Auger electron spectroscopy), the surface reactions are described. This nanostructuring process is divided into three stages: passivation, Cu dissolution, and slow oxide growth, leading to homogenous nanoporous and ligament structures. By tuning the applied potential, the pore and ligament sizes, and thickness values are adjusted. According to X-ray photoelectron spectroscopy, these nanoporous structures are Ti and Zr-oxides rich in hydrous and nonhydrous states. In a simulated physiological solution, for those treated glassy alloy samples, complete suppression of chloride-induced pitting corrosion in the anodic regime of water stability is achieved. This high corrosion resistance is similar to that of clinically used cp-Ti.
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页数:15
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