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Fabrication of Anti-Aging TiO(2) Nanotubes on Biomedical Ti Alloys

The primary objective of this study was to fabricate a TiO(2) nanotubular surface, which could maintain hydrophilicity over time (resist aging). In order to achieve non-aging hydrophilic surfaces, anodization and annealing conditions were optimized. This is the first study to show that anodization a...

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Autores principales: Hamlekhan, Azhang, Butt, Arman, Patel, Sweetu, Royhman, Dmitry, Takoudis, Christos, Sukotjo, Cortino, Yuan, Judy, Jursich, Gregory, Mathew, Mathew T., Hendrickson, William, Virdi, Amarjit, Shokuhfar, Tolou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4008568/
https://www.ncbi.nlm.nih.gov/pubmed/24788345
http://dx.doi.org/10.1371/journal.pone.0096213
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author Hamlekhan, Azhang
Butt, Arman
Patel, Sweetu
Royhman, Dmitry
Takoudis, Christos
Sukotjo, Cortino
Yuan, Judy
Jursich, Gregory
Mathew, Mathew T.
Hendrickson, William
Virdi, Amarjit
Shokuhfar, Tolou
author_facet Hamlekhan, Azhang
Butt, Arman
Patel, Sweetu
Royhman, Dmitry
Takoudis, Christos
Sukotjo, Cortino
Yuan, Judy
Jursich, Gregory
Mathew, Mathew T.
Hendrickson, William
Virdi, Amarjit
Shokuhfar, Tolou
author_sort Hamlekhan, Azhang
collection PubMed
description The primary objective of this study was to fabricate a TiO(2) nanotubular surface, which could maintain hydrophilicity over time (resist aging). In order to achieve non-aging hydrophilic surfaces, anodization and annealing conditions were optimized. This is the first study to show that anodization and annealing condition affect the stability of surface hydrophilicity. Our results indicate that maintenance of hydrophilicity of the obtained TiO(2) nanotubes was affected by anodization voltage and annealing temperature. Annealing sharply decreased the water contact angle (WCA) of the as-synthesized TiO(2) nanotubular surface, which was correlated to improved hydrophilicity. TiO(2) nanotubular surfaces are transformed to hydrophilic surfaces after annealing, regardless of annealing and anodization conditions; however, WCA measurements during aging demonstrate that surface hydrophilicity of non-anodized and 20 V anodized samples decreased after only 11 days of aging, while the 60 V anodized samples maintained their hydrophilicity over the same time period. The nanotubes obtained by 60 V anodization followed by 600 °C annealing maintained their hydrophilicity significantly longer than nanotubes which were obtained by 60 V anodization followed by 300 °C annealing.
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spelling pubmed-40085682014-05-09 Fabrication of Anti-Aging TiO(2) Nanotubes on Biomedical Ti Alloys Hamlekhan, Azhang Butt, Arman Patel, Sweetu Royhman, Dmitry Takoudis, Christos Sukotjo, Cortino Yuan, Judy Jursich, Gregory Mathew, Mathew T. Hendrickson, William Virdi, Amarjit Shokuhfar, Tolou PLoS One Research Article The primary objective of this study was to fabricate a TiO(2) nanotubular surface, which could maintain hydrophilicity over time (resist aging). In order to achieve non-aging hydrophilic surfaces, anodization and annealing conditions were optimized. This is the first study to show that anodization and annealing condition affect the stability of surface hydrophilicity. Our results indicate that maintenance of hydrophilicity of the obtained TiO(2) nanotubes was affected by anodization voltage and annealing temperature. Annealing sharply decreased the water contact angle (WCA) of the as-synthesized TiO(2) nanotubular surface, which was correlated to improved hydrophilicity. TiO(2) nanotubular surfaces are transformed to hydrophilic surfaces after annealing, regardless of annealing and anodization conditions; however, WCA measurements during aging demonstrate that surface hydrophilicity of non-anodized and 20 V anodized samples decreased after only 11 days of aging, while the 60 V anodized samples maintained their hydrophilicity over the same time period. The nanotubes obtained by 60 V anodization followed by 600 °C annealing maintained their hydrophilicity significantly longer than nanotubes which were obtained by 60 V anodization followed by 300 °C annealing. Public Library of Science 2014-05-02 /pmc/articles/PMC4008568/ /pubmed/24788345 http://dx.doi.org/10.1371/journal.pone.0096213 Text en © 2014 Hamlekhan et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Hamlekhan, Azhang
Butt, Arman
Patel, Sweetu
Royhman, Dmitry
Takoudis, Christos
Sukotjo, Cortino
Yuan, Judy
Jursich, Gregory
Mathew, Mathew T.
Hendrickson, William
Virdi, Amarjit
Shokuhfar, Tolou
Fabrication of Anti-Aging TiO(2) Nanotubes on Biomedical Ti Alloys
title Fabrication of Anti-Aging TiO(2) Nanotubes on Biomedical Ti Alloys
title_full Fabrication of Anti-Aging TiO(2) Nanotubes on Biomedical Ti Alloys
title_fullStr Fabrication of Anti-Aging TiO(2) Nanotubes on Biomedical Ti Alloys
title_full_unstemmed Fabrication of Anti-Aging TiO(2) Nanotubes on Biomedical Ti Alloys
title_short Fabrication of Anti-Aging TiO(2) Nanotubes on Biomedical Ti Alloys
title_sort fabrication of anti-aging tio(2) nanotubes on biomedical ti alloys
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4008568/
https://www.ncbi.nlm.nih.gov/pubmed/24788345
http://dx.doi.org/10.1371/journal.pone.0096213
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