A Novel Investigation of the Formation of Titanium Oxide Nanotubes on Thermally Formed Oxide of Ti-6Al-4V

Author:

Butt Arman12,Hamlekhan Azhang23,Patel Sweetu12,Royhman Dmitry24,Sukotjo Cortino24,Mathew Mathew T.25,Shokuhfar Tolou23,Takoudis Christos126

Affiliation:

1. Department of Bioengineering, University of Illinois at Chicago, Chicago, Ill.

2. Institute of Biomaterials, Tribocorrosion and Nanomedicine (IBTN), Chicago, Ill.

3. Mechanical Engineering–Engineering Mechanics, Michigan Technological University, Houghton, Mich.

4. Department of Restorative Dentistry, College of Dentistry, University of Illinois at Chicago, Chicago, Ill.

5. Department of Orthopedics, Rush University Medical Center, Chicago, Ill.

6. Department of Chemical Engineering, University of Illinois at Chicago, Chicago, Ill.

Abstract

Traditionally, titanium oxide (TiO2) nanotubes (TNTs) are anodized on Ti-6Al-4V alloy (Ti-V) surfaces with native TiO2 (amorphous TiO2); subsequent heat treatment of anodized surfaces has been observed to enhance cellular response. As-is bulk Ti-V, however, is often subjected to heat treatment, such as thermal oxidation (TO), to improve its mechanical properties. Thermal oxidation treatment of Ti-V at temperatures greater than 200°C and 400°C initiates the formation of anatase and rutile TiO2, respectively, which can affect TNT formation. This study aims at understanding the TNT formation mechanism on Ti-V surfaces with TO-formed TiO2 compared with that on as-is Ti-V surfaces with native oxide. Thermal oxidation–formed TiO2 can affect TNT formation and surface wettability because TO-formed TiO2 is expected to be part of the TNT structure. Surface characterization was carried out with field emission scanning electron microscopy, energy dispersive x-ray spectroscopy, water contact angle measurements, and white light interferometry. The TNTs were formed on control and 300°C and 600°C TO-treated Ti-V samples, and significant differences in TNT lengths and surface morphology were observed. No difference in elemental composition was found. Thermal oxidation and TO/anodization treatments produced hydrophilic surfaces, while hydrophobic behavior was observed over time (aging) for all samples. Reduced hydrophobic behavior was observed for TO/anodized samples when compared with control, control/anodized, and TO-treated samples. A method for improved surface wettability and TNT morphology is therefore discussed for possible applications in effective osseointegration of dental and orthopedic implants.

Publisher

American Academy of Implant Dentistry

Subject

Oral Surgery

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