Fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanostructured composite coating for biomedical applications

Despite excellent bioactivity of bioactive ceramics such as hydroxyapatite, their clinical applications have been limited due to their poor mechanical properties. Using composite coatings with improved mechanical properties could be a solution to this problem. Therefore, the strength of metal substr...

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Main Authors: M. Mazrooei Sebdani, M. H. Fathi
Format: Article
Language:fas
Published: Isfahan University of Technology 2012-12-01
Series:Journal of Advanced Materials in Engineering
Subjects:
Online Access:http://jame.iut.ac.ir/article-1-539-en.html
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author M. Mazrooei Sebdani
M. H. Fathi
author_facet M. Mazrooei Sebdani
M. H. Fathi
author_sort M. Mazrooei Sebdani
collection DOAJ
description Despite excellent bioactivity of bioactive ceramics such as hydroxyapatite, their clinical applications have been limited due to their poor mechanical properties. Using composite coatings with improved mechanical properties could be a solution to this problem. Therefore, the strength of metal substrate and the bioactivity of the improved composite coating combined could yield suitable results. The aim of this work was fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanocomposite coating. The sol-gel technique was used to prepare hydroxyapatite-forsterite-bioactive glass nanocomposite in order to coat on 316L stainless steel (SS) by deep coating technique. The X-ray diffraction (XRD), scanning electron microscopy (SEM), atomic force microscopy (AFM) and energy dispersive X-ray analysis (EDX) techniques were used to investigate the microstructure and morphology of the prepared coating. The results obtained from XRD analysis showed that the suitable temperature for calcination is 600 °C. At this temperature, the homogenous and crack-free coating could attach to the 316L SS substrate. The crystallite size of composite coatings determined via AFM was lower than 100 nm. Overall, the results obtained from this work indicate that hydroxyapatite-forsterite-bioactive glass nanocomposite coating can be a good candidate for biomedical applications.
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spelling doaj.art-6fe792761090431dbf997fa0f888b5642022-12-21T18:26:21ZfasIsfahan University of TechnologyJournal of Advanced Materials in Engineering2251-600X2423-57332012-12-01312111Fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanostructured composite coating for biomedical applicationsM. Mazrooei Sebdani0M. H. Fathi1 Biomaterials Group, Department of Materials Engineering, Isfahan University of Technology Biomaterials Group, Department of Materials Engineering, Isfahan University of Technology Despite excellent bioactivity of bioactive ceramics such as hydroxyapatite, their clinical applications have been limited due to their poor mechanical properties. Using composite coatings with improved mechanical properties could be a solution to this problem. Therefore, the strength of metal substrate and the bioactivity of the improved composite coating combined could yield suitable results. The aim of this work was fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanocomposite coating. The sol-gel technique was used to prepare hydroxyapatite-forsterite-bioactive glass nanocomposite in order to coat on 316L stainless steel (SS) by deep coating technique. The X-ray diffraction (XRD), scanning electron microscopy (SEM), atomic force microscopy (AFM) and energy dispersive X-ray analysis (EDX) techniques were used to investigate the microstructure and morphology of the prepared coating. The results obtained from XRD analysis showed that the suitable temperature for calcination is 600 °C. At this temperature, the homogenous and crack-free coating could attach to the 316L SS substrate. The crystallite size of composite coatings determined via AFM was lower than 100 nm. Overall, the results obtained from this work indicate that hydroxyapatite-forsterite-bioactive glass nanocomposite coating can be a good candidate for biomedical applications.http://jame.iut.ac.ir/article-1-539-en.htmlnanostructured composite coatinghydroxyapatiteforsteritebioactive glass.
spellingShingle M. Mazrooei Sebdani
M. H. Fathi
Fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanostructured composite coating for biomedical applications
Journal of Advanced Materials in Engineering
nanostructured composite coating
hydroxyapatite
forsterite
bioactive glass.
title Fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanostructured composite coating for biomedical applications
title_full Fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanostructured composite coating for biomedical applications
title_fullStr Fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanostructured composite coating for biomedical applications
title_full_unstemmed Fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanostructured composite coating for biomedical applications
title_short Fabrication and characterization of hydroxyapatite-forsterite-bioactive glass nanostructured composite coating for biomedical applications
title_sort fabrication and characterization of hydroxyapatite forsterite bioactive glass nanostructured composite coating for biomedical applications
topic nanostructured composite coating
hydroxyapatite
forsterite
bioactive glass.
url http://jame.iut.ac.ir/article-1-539-en.html
work_keys_str_mv AT mmazrooeisebdani fabricationandcharacterizationofhydroxyapatiteforsteritebioactiveglassnanostructuredcompositecoatingforbiomedicalapplications
AT mhfathi fabricationandcharacterizationofhydroxyapatiteforsteritebioactiveglassnanostructuredcompositecoatingforbiomedicalapplications