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Silica-Based and Borate-Based, Titania-Containing Bioactive Coatings Characterization: Critical Strain Energy Release Rate, Residual Stresses, Hardness, and Thermal Expansion

Silica-based and borate-based glass series, with increasing amounts of TiO(2) incorporated, are characterized in terms of their mechanical properties relevant to their use as metallic coating materials. It is observed that borate-based glasses exhibit CTE (Coefficient of Thermal Expansion) closer to...

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Autores principales: Rodriguez, Omar, Matinmanesh, Ali, Phull, Sunjeev, Schemitsch, Emil H., Zalzal, Paul, Clarkin, Owen M., Papini, Marcello, Towler, Mark R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5197991/
https://www.ncbi.nlm.nih.gov/pubmed/27916951
http://dx.doi.org/10.3390/jfb7040032
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author Rodriguez, Omar
Matinmanesh, Ali
Phull, Sunjeev
Schemitsch, Emil H.
Zalzal, Paul
Clarkin, Owen M.
Papini, Marcello
Towler, Mark R.
author_facet Rodriguez, Omar
Matinmanesh, Ali
Phull, Sunjeev
Schemitsch, Emil H.
Zalzal, Paul
Clarkin, Owen M.
Papini, Marcello
Towler, Mark R.
author_sort Rodriguez, Omar
collection PubMed
description Silica-based and borate-based glass series, with increasing amounts of TiO(2) incorporated, are characterized in terms of their mechanical properties relevant to their use as metallic coating materials. It is observed that borate-based glasses exhibit CTE (Coefficient of Thermal Expansion) closer to the substrate’s (Ti6Al4V) CTE, translating into higher mode I critical strain energy release rates of glasses and compressive residual stresses and strains at the coating/substrate interface, outperforming the silica-based glasses counterparts. An increase in the content of TiO(2) in the glasses results in an increase in the mode I critical strain energy release rate for both the bulk glass and for the coating/substrate system, proving that the addition of TiO(2) to the glass structure enhances its toughness, while decreasing its bulk hardness. Borate-based glass BRT3, with 15 mol % TiO(2) incorporated, exhibits superior properties overall compared to the other proposed glasses in this work, as well as 45S5 Bioglass(®) and Pyrex.
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spelling pubmed-51979912017-01-04 Silica-Based and Borate-Based, Titania-Containing Bioactive Coatings Characterization: Critical Strain Energy Release Rate, Residual Stresses, Hardness, and Thermal Expansion Rodriguez, Omar Matinmanesh, Ali Phull, Sunjeev Schemitsch, Emil H. Zalzal, Paul Clarkin, Owen M. Papini, Marcello Towler, Mark R. J Funct Biomater Article Silica-based and borate-based glass series, with increasing amounts of TiO(2) incorporated, are characterized in terms of their mechanical properties relevant to their use as metallic coating materials. It is observed that borate-based glasses exhibit CTE (Coefficient of Thermal Expansion) closer to the substrate’s (Ti6Al4V) CTE, translating into higher mode I critical strain energy release rates of glasses and compressive residual stresses and strains at the coating/substrate interface, outperforming the silica-based glasses counterparts. An increase in the content of TiO(2) in the glasses results in an increase in the mode I critical strain energy release rate for both the bulk glass and for the coating/substrate system, proving that the addition of TiO(2) to the glass structure enhances its toughness, while decreasing its bulk hardness. Borate-based glass BRT3, with 15 mol % TiO(2) incorporated, exhibits superior properties overall compared to the other proposed glasses in this work, as well as 45S5 Bioglass(®) and Pyrex. MDPI 2016-12-01 /pmc/articles/PMC5197991/ /pubmed/27916951 http://dx.doi.org/10.3390/jfb7040032 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rodriguez, Omar
Matinmanesh, Ali
Phull, Sunjeev
Schemitsch, Emil H.
Zalzal, Paul
Clarkin, Owen M.
Papini, Marcello
Towler, Mark R.
Silica-Based and Borate-Based, Titania-Containing Bioactive Coatings Characterization: Critical Strain Energy Release Rate, Residual Stresses, Hardness, and Thermal Expansion
title Silica-Based and Borate-Based, Titania-Containing Bioactive Coatings Characterization: Critical Strain Energy Release Rate, Residual Stresses, Hardness, and Thermal Expansion
title_full Silica-Based and Borate-Based, Titania-Containing Bioactive Coatings Characterization: Critical Strain Energy Release Rate, Residual Stresses, Hardness, and Thermal Expansion
title_fullStr Silica-Based and Borate-Based, Titania-Containing Bioactive Coatings Characterization: Critical Strain Energy Release Rate, Residual Stresses, Hardness, and Thermal Expansion
title_full_unstemmed Silica-Based and Borate-Based, Titania-Containing Bioactive Coatings Characterization: Critical Strain Energy Release Rate, Residual Stresses, Hardness, and Thermal Expansion
title_short Silica-Based and Borate-Based, Titania-Containing Bioactive Coatings Characterization: Critical Strain Energy Release Rate, Residual Stresses, Hardness, and Thermal Expansion
title_sort silica-based and borate-based, titania-containing bioactive coatings characterization: critical strain energy release rate, residual stresses, hardness, and thermal expansion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5197991/
https://www.ncbi.nlm.nih.gov/pubmed/27916951
http://dx.doi.org/10.3390/jfb7040032
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