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FeMn with Phases of a Degradable Ag Alloy for Residue-Free and Adapted Bioresorbability

The development of bioresorbable materials for temporary implantation enables progress in medical technology. Iron (Fe)-based degradable materials are biocompatible and exhibit good mechanical properties, but their degradation rate is low. Aside from alloying with Manganese (Mn), the creation of pha...

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Autores principales: Krüger, Jan Tobias, Hoyer, Kay-Peter, Huang, Jingyuan, Filor, Viviane, Mateus-Vargas, Rafael Hernan, Oltmanns, Hilke, Meißner, Jessica, Grundmeier, Guido, Schaper, Mirko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9590034/
https://www.ncbi.nlm.nih.gov/pubmed/36278654
http://dx.doi.org/10.3390/jfb13040185
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author Krüger, Jan Tobias
Hoyer, Kay-Peter
Huang, Jingyuan
Filor, Viviane
Mateus-Vargas, Rafael Hernan
Oltmanns, Hilke
Meißner, Jessica
Grundmeier, Guido
Schaper, Mirko
author_facet Krüger, Jan Tobias
Hoyer, Kay-Peter
Huang, Jingyuan
Filor, Viviane
Mateus-Vargas, Rafael Hernan
Oltmanns, Hilke
Meißner, Jessica
Grundmeier, Guido
Schaper, Mirko
author_sort Krüger, Jan Tobias
collection PubMed
description The development of bioresorbable materials for temporary implantation enables progress in medical technology. Iron (Fe)-based degradable materials are biocompatible and exhibit good mechanical properties, but their degradation rate is low. Aside from alloying with Manganese (Mn), the creation of phases with high electrochemical potential such as silver (Ag) phases to cause the anodic dissolution of FeMn is promising. However, to enable residue-free dissolution, the Ag needs to be modified. This concern is addressed, as FeMn modified with a degradable Ag-Calcium-Lanthanum (AgCaLa) alloy is investigated. The electrochemical properties and the degradation behavior are determined via a static immersion test. The local differences in electrochemical potential increase the degradation rate (low pH values), and the formation of gaps around the Ag phases (neutral pH values) demonstrates the benefit of the strategy. Nevertheless, the formation of corrosion-inhibiting layers avoids an increased degradation rate under a neutral pH value. The complete bioresorption of the material is possible since the phases of the degradable AgCaLa alloy dissolve after the FeMn matrix. Cell viability tests reveal biocompatibility, and the antibacterial activity of the degradation supernatant is observed. Thus, FeMn modified with degradable AgCaLa phases is promising as a bioresorbable material if corrosion-inhibiting layers can be diminished.
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spelling pubmed-95900342022-10-25 FeMn with Phases of a Degradable Ag Alloy for Residue-Free and Adapted Bioresorbability Krüger, Jan Tobias Hoyer, Kay-Peter Huang, Jingyuan Filor, Viviane Mateus-Vargas, Rafael Hernan Oltmanns, Hilke Meißner, Jessica Grundmeier, Guido Schaper, Mirko J Funct Biomater Article The development of bioresorbable materials for temporary implantation enables progress in medical technology. Iron (Fe)-based degradable materials are biocompatible and exhibit good mechanical properties, but their degradation rate is low. Aside from alloying with Manganese (Mn), the creation of phases with high electrochemical potential such as silver (Ag) phases to cause the anodic dissolution of FeMn is promising. However, to enable residue-free dissolution, the Ag needs to be modified. This concern is addressed, as FeMn modified with a degradable Ag-Calcium-Lanthanum (AgCaLa) alloy is investigated. The electrochemical properties and the degradation behavior are determined via a static immersion test. The local differences in electrochemical potential increase the degradation rate (low pH values), and the formation of gaps around the Ag phases (neutral pH values) demonstrates the benefit of the strategy. Nevertheless, the formation of corrosion-inhibiting layers avoids an increased degradation rate under a neutral pH value. The complete bioresorption of the material is possible since the phases of the degradable AgCaLa alloy dissolve after the FeMn matrix. Cell viability tests reveal biocompatibility, and the antibacterial activity of the degradation supernatant is observed. Thus, FeMn modified with degradable AgCaLa phases is promising as a bioresorbable material if corrosion-inhibiting layers can be diminished. MDPI 2022-10-13 /pmc/articles/PMC9590034/ /pubmed/36278654 http://dx.doi.org/10.3390/jfb13040185 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Krüger, Jan Tobias
Hoyer, Kay-Peter
Huang, Jingyuan
Filor, Viviane
Mateus-Vargas, Rafael Hernan
Oltmanns, Hilke
Meißner, Jessica
Grundmeier, Guido
Schaper, Mirko
FeMn with Phases of a Degradable Ag Alloy for Residue-Free and Adapted Bioresorbability
title FeMn with Phases of a Degradable Ag Alloy for Residue-Free and Adapted Bioresorbability
title_full FeMn with Phases of a Degradable Ag Alloy for Residue-Free and Adapted Bioresorbability
title_fullStr FeMn with Phases of a Degradable Ag Alloy for Residue-Free and Adapted Bioresorbability
title_full_unstemmed FeMn with Phases of a Degradable Ag Alloy for Residue-Free and Adapted Bioresorbability
title_short FeMn with Phases of a Degradable Ag Alloy for Residue-Free and Adapted Bioresorbability
title_sort femn with phases of a degradable ag alloy for residue-free and adapted bioresorbability
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9590034/
https://www.ncbi.nlm.nih.gov/pubmed/36278654
http://dx.doi.org/10.3390/jfb13040185
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