Cargando…

Revealing the Effects of Microarc Oxidation on the Mechanical and Degradation Properties of Mg-Based Biodegradable Composites

[Image: see text] To overcome the inherent weakness of polylactic acid (PLA), used as scaffolding materials, multiple samples of Mg/PLA alloy composite materials was made by plastic injection molding. To enhance the interfacial interaction with PLA, magnesium alloy was treated with microarc oxidatio...

Descripción completa

Detalles Bibliográficos
Autores principales: Butt, Muhammad Shoaib, Maqbool, Adnan, Saleem, Mohsin, Umer, Malik Adeel, Javaid, Farhan, Malik, Rizwan Ahmed, Hussain, Muhammad Asif, Rehman, Zabdur
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7301383/
https://www.ncbi.nlm.nih.gov/pubmed/32566834
http://dx.doi.org/10.1021/acsomega.0c00836
_version_ 1783547679776702464
author Butt, Muhammad Shoaib
Maqbool, Adnan
Saleem, Mohsin
Umer, Malik Adeel
Javaid, Farhan
Malik, Rizwan Ahmed
Hussain, Muhammad Asif
Rehman, Zabdur
author_facet Butt, Muhammad Shoaib
Maqbool, Adnan
Saleem, Mohsin
Umer, Malik Adeel
Javaid, Farhan
Malik, Rizwan Ahmed
Hussain, Muhammad Asif
Rehman, Zabdur
author_sort Butt, Muhammad Shoaib
collection PubMed
description [Image: see text] To overcome the inherent weakness of polylactic acid (PLA), used as scaffolding materials, multiple samples of Mg/PLA alloy composite materials was made by plastic injection molding. To enhance the interfacial interaction with PLA, magnesium alloy was treated with microarc oxidation (MAO) at four different frequencies, resulting in an improvement in mechanical strength and toughness. The microarc oxidation films consisted mainly of a porous MgO ceramic layer on the Mg rod. Based on the phenomenon of micro-anchoring and electrostatic interaction, a change in frequency during MAO showed considerable improvements in the ductility of the composite materials. The presence of the ceramic layer enriched the interfacial bonding between the Mg rod and outer PLA cladding, resulting in the PLA-clad Mg rod showing a higher tensile strength. In vitro degradation test was carried out in Hank’s solution for different time periods. Surface-treated Mg alloy-based composite samples displayed a lower degradation rate as compared to untreated Mg alloy samples. The surface-treated sample at a 800 Hz pulse frequency showed the best degradation resistance and mechanical properties after being immersed in Hank’s solution as compared to other samples. Mg-reinforced PLA composite rods are promising candidates for orthopedic implants.
format Online
Article
Text
id pubmed-7301383
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-73013832020-06-19 Revealing the Effects of Microarc Oxidation on the Mechanical and Degradation Properties of Mg-Based Biodegradable Composites Butt, Muhammad Shoaib Maqbool, Adnan Saleem, Mohsin Umer, Malik Adeel Javaid, Farhan Malik, Rizwan Ahmed Hussain, Muhammad Asif Rehman, Zabdur ACS Omega [Image: see text] To overcome the inherent weakness of polylactic acid (PLA), used as scaffolding materials, multiple samples of Mg/PLA alloy composite materials was made by plastic injection molding. To enhance the interfacial interaction with PLA, magnesium alloy was treated with microarc oxidation (MAO) at four different frequencies, resulting in an improvement in mechanical strength and toughness. The microarc oxidation films consisted mainly of a porous MgO ceramic layer on the Mg rod. Based on the phenomenon of micro-anchoring and electrostatic interaction, a change in frequency during MAO showed considerable improvements in the ductility of the composite materials. The presence of the ceramic layer enriched the interfacial bonding between the Mg rod and outer PLA cladding, resulting in the PLA-clad Mg rod showing a higher tensile strength. In vitro degradation test was carried out in Hank’s solution for different time periods. Surface-treated Mg alloy-based composite samples displayed a lower degradation rate as compared to untreated Mg alloy samples. The surface-treated sample at a 800 Hz pulse frequency showed the best degradation resistance and mechanical properties after being immersed in Hank’s solution as compared to other samples. Mg-reinforced PLA composite rods are promising candidates for orthopedic implants. American Chemical Society 2020-06-03 /pmc/articles/PMC7301383/ /pubmed/32566834 http://dx.doi.org/10.1021/acsomega.0c00836 Text en Copyright © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Butt, Muhammad Shoaib
Maqbool, Adnan
Saleem, Mohsin
Umer, Malik Adeel
Javaid, Farhan
Malik, Rizwan Ahmed
Hussain, Muhammad Asif
Rehman, Zabdur
Revealing the Effects of Microarc Oxidation on the Mechanical and Degradation Properties of Mg-Based Biodegradable Composites
title Revealing the Effects of Microarc Oxidation on the Mechanical and Degradation Properties of Mg-Based Biodegradable Composites
title_full Revealing the Effects of Microarc Oxidation on the Mechanical and Degradation Properties of Mg-Based Biodegradable Composites
title_fullStr Revealing the Effects of Microarc Oxidation on the Mechanical and Degradation Properties of Mg-Based Biodegradable Composites
title_full_unstemmed Revealing the Effects of Microarc Oxidation on the Mechanical and Degradation Properties of Mg-Based Biodegradable Composites
title_short Revealing the Effects of Microarc Oxidation on the Mechanical and Degradation Properties of Mg-Based Biodegradable Composites
title_sort revealing the effects of microarc oxidation on the mechanical and degradation properties of mg-based biodegradable composites
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7301383/
https://www.ncbi.nlm.nih.gov/pubmed/32566834
http://dx.doi.org/10.1021/acsomega.0c00836
work_keys_str_mv AT buttmuhammadshoaib revealingtheeffectsofmicroarcoxidationonthemechanicalanddegradationpropertiesofmgbasedbiodegradablecomposites
AT maqbooladnan revealingtheeffectsofmicroarcoxidationonthemechanicalanddegradationpropertiesofmgbasedbiodegradablecomposites
AT saleemmohsin revealingtheeffectsofmicroarcoxidationonthemechanicalanddegradationpropertiesofmgbasedbiodegradablecomposites
AT umermalikadeel revealingtheeffectsofmicroarcoxidationonthemechanicalanddegradationpropertiesofmgbasedbiodegradablecomposites
AT javaidfarhan revealingtheeffectsofmicroarcoxidationonthemechanicalanddegradationpropertiesofmgbasedbiodegradablecomposites
AT malikrizwanahmed revealingtheeffectsofmicroarcoxidationonthemechanicalanddegradationpropertiesofmgbasedbiodegradablecomposites
AT hussainmuhammadasif revealingtheeffectsofmicroarcoxidationonthemechanicalanddegradationpropertiesofmgbasedbiodegradablecomposites
AT rehmanzabdur revealingtheeffectsofmicroarcoxidationonthemechanicalanddegradationpropertiesofmgbasedbiodegradablecomposites