Impact of pH and chloride content on the biodegradation of magnesium alloys for medical implants: An in vitro and phase-field study

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Main Authors: Kovacevic, S., Ali, W., Mandal, T. K., Martínez-Pañeda, E., Llorca, J.
Format: Preprint
Published: 2025
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_version_ 1866909545128787968
author Kovacevic, S.
Ali, W.
Mandal, T. K.
Martínez-Pañeda, E.
Llorca, J.
author_facet Kovacevic, S.
Ali, W.
Mandal, T. K.
Martínez-Pañeda, E.
Llorca, J.
contents The individual contributions of pH and chloride concentration to the corrosion kinetics of bioabsorbable magnesium (Mg) alloys remain unresolved despite their significant roles as driving factors in Mg corrosion. This study demonstrates and quantifies hitherto unknown separate effects of pH and chloride content on the corrosion of Mg alloys pertinent to biomedical implant applications. The experimental setup designed for this purpose enables the quantification of the dependence of corrosion on pH and chloride concentration. The in vitro tests conclusively demonstrate that variations in chloride concentration, relevant to biomedical applications, have a negligible effect on corrosion kinetics. The findings identify pH as a critical factor in the corrosion of bioabsorbable Mg alloys. A variationally consistent phase-field model is developed for assessing the degradation of Mg alloys in biological fluids. The model accurately predicts the corrosion performance of Mg alloys observed during the experiments, including their dependence on pH and chloride concentration. The capability of the framework to account for mechano-chemical effects during corrosion is demonstrated in practical orthopaedic applications considering bioabsorbable Mg alloy implants for bone fracture fixation and porous scaffolds for bone tissue engineering. The strategy has the potential to assess the in vitro and in vivo service life of bioabsorbable Mg-based biomedical devices.
format Preprint
id arxiv_https___arxiv_org_abs_2503_15700
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Impact of pH and chloride content on the biodegradation of magnesium alloys for medical implants: An in vitro and phase-field study
Kovacevic, S.
Ali, W.
Mandal, T. K.
Martínez-Pañeda, E.
Llorca, J.
Medical Physics
Computational Engineering, Finance, and Science
Biological Physics
The individual contributions of pH and chloride concentration to the corrosion kinetics of bioabsorbable magnesium (Mg) alloys remain unresolved despite their significant roles as driving factors in Mg corrosion. This study demonstrates and quantifies hitherto unknown separate effects of pH and chloride content on the corrosion of Mg alloys pertinent to biomedical implant applications. The experimental setup designed for this purpose enables the quantification of the dependence of corrosion on pH and chloride concentration. The in vitro tests conclusively demonstrate that variations in chloride concentration, relevant to biomedical applications, have a negligible effect on corrosion kinetics. The findings identify pH as a critical factor in the corrosion of bioabsorbable Mg alloys. A variationally consistent phase-field model is developed for assessing the degradation of Mg alloys in biological fluids. The model accurately predicts the corrosion performance of Mg alloys observed during the experiments, including their dependence on pH and chloride concentration. The capability of the framework to account for mechano-chemical effects during corrosion is demonstrated in practical orthopaedic applications considering bioabsorbable Mg alloy implants for bone fracture fixation and porous scaffolds for bone tissue engineering. The strategy has the potential to assess the in vitro and in vivo service life of bioabsorbable Mg-based biomedical devices.
title Impact of pH and chloride content on the biodegradation of magnesium alloys for medical implants: An in vitro and phase-field study
topic Medical Physics
Computational Engineering, Finance, and Science
Biological Physics
url https://arxiv.org/abs/2503.15700