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Surface Activation and Pretreatments for Biocompatible Metals and Alloys Used in Biomedical Applications

To improve the biocompatibility of medical implants, a chemical composition of bone-like material (e.g., hydroxyapatite) can be deposited on the surface of various substrates. When hydroxyapatite is deposited on surfaces of orthopedic implants, several parameters must be addressed including the need...

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Autores principales: Huynh, Vivian, Ngo, Ngan K., Golden, Teresa D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6582893/
https://www.ncbi.nlm.nih.gov/pubmed/31275394
http://dx.doi.org/10.1155/2019/3806504
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author Huynh, Vivian
Ngo, Ngan K.
Golden, Teresa D.
author_facet Huynh, Vivian
Ngo, Ngan K.
Golden, Teresa D.
author_sort Huynh, Vivian
collection PubMed
description To improve the biocompatibility of medical implants, a chemical composition of bone-like material (e.g., hydroxyapatite) can be deposited on the surface of various substrates. When hydroxyapatite is deposited on surfaces of orthopedic implants, several parameters must be addressed including the need of rapid bone ingrowth, high mechanical stability, corrosion resistance, biocompatibility, and osseointegration induction. However, the deposition process can fail due to poor adhesion of the hydroxyapatite coating to the metallic substrate. Increasing adhesion by enhancing chemical bonding and minimizing biocoating degradation can be achieved through surface activation and pretreatment techniques. Surface activation can increase the adhesion of the biocoating to implants, providing protection in the biological environment and restricting the leaching of metal ions in vivo. This review covers the main surface activation and pretreatment techniques for substrates such as titanium and its alloys, stainless steel, magnesium alloys, and CoCrMo alloys. Alkaline, acidic, and anodizing techniques and their effects on bioapatite deposition are discussed for each of the substrates. Other chemical treatment and combination techniques are covered when used for certain materials. For titanium, the surface pretreatments improve the thickness of the TiO(2) passive layer, improving adhesion and bonding of the hydroxyapatite coating. To reduce corrosion and wear rates on the surface of stainless steel, different surface modifications enhance the bonding between the bioapatite coatings and the substrate. The use of surface modifications also improves the morphology of hydroxyapatite coatings on magnesium surfaces and limits the concentration of magnesium ions released into the body. Surface treatment of CoCrMo alloys also decreased the concentration of harmful ions released in vivo. The literature covered in this review is for pretreated surfaces which then undergo deposition of hydroxyapatite using electrodeposition or other wet deposition techniques and mainly limited to the years 2000-2019.
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spelling pubmed-65828932019-07-04 Surface Activation and Pretreatments for Biocompatible Metals and Alloys Used in Biomedical Applications Huynh, Vivian Ngo, Ngan K. Golden, Teresa D. Int J Biomater Review Article To improve the biocompatibility of medical implants, a chemical composition of bone-like material (e.g., hydroxyapatite) can be deposited on the surface of various substrates. When hydroxyapatite is deposited on surfaces of orthopedic implants, several parameters must be addressed including the need of rapid bone ingrowth, high mechanical stability, corrosion resistance, biocompatibility, and osseointegration induction. However, the deposition process can fail due to poor adhesion of the hydroxyapatite coating to the metallic substrate. Increasing adhesion by enhancing chemical bonding and minimizing biocoating degradation can be achieved through surface activation and pretreatment techniques. Surface activation can increase the adhesion of the biocoating to implants, providing protection in the biological environment and restricting the leaching of metal ions in vivo. This review covers the main surface activation and pretreatment techniques for substrates such as titanium and its alloys, stainless steel, magnesium alloys, and CoCrMo alloys. Alkaline, acidic, and anodizing techniques and their effects on bioapatite deposition are discussed for each of the substrates. Other chemical treatment and combination techniques are covered when used for certain materials. For titanium, the surface pretreatments improve the thickness of the TiO(2) passive layer, improving adhesion and bonding of the hydroxyapatite coating. To reduce corrosion and wear rates on the surface of stainless steel, different surface modifications enhance the bonding between the bioapatite coatings and the substrate. The use of surface modifications also improves the morphology of hydroxyapatite coatings on magnesium surfaces and limits the concentration of magnesium ions released into the body. Surface treatment of CoCrMo alloys also decreased the concentration of harmful ions released in vivo. The literature covered in this review is for pretreated surfaces which then undergo deposition of hydroxyapatite using electrodeposition or other wet deposition techniques and mainly limited to the years 2000-2019. Hindawi 2019-06-02 /pmc/articles/PMC6582893/ /pubmed/31275394 http://dx.doi.org/10.1155/2019/3806504 Text en Copyright © 2019 Vivian Huynh et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Review Article
Huynh, Vivian
Ngo, Ngan K.
Golden, Teresa D.
Surface Activation and Pretreatments for Biocompatible Metals and Alloys Used in Biomedical Applications
title Surface Activation and Pretreatments for Biocompatible Metals and Alloys Used in Biomedical Applications
title_full Surface Activation and Pretreatments for Biocompatible Metals and Alloys Used in Biomedical Applications
title_fullStr Surface Activation and Pretreatments for Biocompatible Metals and Alloys Used in Biomedical Applications
title_full_unstemmed Surface Activation and Pretreatments for Biocompatible Metals and Alloys Used in Biomedical Applications
title_short Surface Activation and Pretreatments for Biocompatible Metals and Alloys Used in Biomedical Applications
title_sort surface activation and pretreatments for biocompatible metals and alloys used in biomedical applications
topic Review Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6582893/
https://www.ncbi.nlm.nih.gov/pubmed/31275394
http://dx.doi.org/10.1155/2019/3806504
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