Fe-Mn alloys represent promising candidates for temporary biomedical intravascular implants with a thin structure (e.g., coronary, cerebral and peripheral stents) due to their high mechanical strength, acceptable biocompatibility, and controllable corrosion rate. Traditionally, these devices are produced by casting followed by thermo-mechanical processing, i.e. a time- and energy-intensive top-to-bottom approach. This study explores electroforming as an alternative method to fabricate bottom-to-top thin Fe-Mn structures using ethylene glycolbased deep eutectic solvents (DESs). Glycine was introduced as a complexing agent to enhance Mn co-deposition. Electroforming was investigated in presence of three glycine concentrations (0.2, 0.4, and 0.6 M), and the the microstructure, composition, corrosion behavior, and cytocompatibility of the developed thin (50-85 μm) structures were characterized. Higher glycine content improved Mn incorporation, crystallinity, hardness and increased corrosion rate. These findings support the use of DES-based electroforming as a promising route for fabricating biodegradable Fe-Mn devices with tunable properties.
Development of biodegradable Fe-Mn thin structures by electroforming in deep eutectic solvents / Sales, V.; Paternoster, C.; Copes, F.; Mengucci, P.; Grima, G.; Cabibbo, M.; Kolliopoulos, G.; Mantovani, D.. - In: BIOMATERIALS AND BIOSYSTEMS. - ISSN 2666-5344. - ELETTRONICO. - 20:(2025). [10.1016/j.bbiosy.2025.100123]
Development of biodegradable Fe-Mn thin structures by electroforming in deep eutectic solvents
Paternoster C.Writing – Original Draft Preparation
;Mengucci P.Formal Analysis
;Grima G.Data Curation
;Cabibbo M.Visualization
;
2025-01-01
Abstract
Fe-Mn alloys represent promising candidates for temporary biomedical intravascular implants with a thin structure (e.g., coronary, cerebral and peripheral stents) due to their high mechanical strength, acceptable biocompatibility, and controllable corrosion rate. Traditionally, these devices are produced by casting followed by thermo-mechanical processing, i.e. a time- and energy-intensive top-to-bottom approach. This study explores electroforming as an alternative method to fabricate bottom-to-top thin Fe-Mn structures using ethylene glycolbased deep eutectic solvents (DESs). Glycine was introduced as a complexing agent to enhance Mn co-deposition. Electroforming was investigated in presence of three glycine concentrations (0.2, 0.4, and 0.6 M), and the the microstructure, composition, corrosion behavior, and cytocompatibility of the developed thin (50-85 μm) structures were characterized. Higher glycine content improved Mn incorporation, crystallinity, hardness and increased corrosion rate. These findings support the use of DES-based electroforming as a promising route for fabricating biodegradable Fe-Mn devices with tunable properties.| File | Dimensione | Formato | |
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Sales_Development-biodegradable-Fe-Mn-thin-structures_2025.pdf
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Descrizione: Biom Bios 2025
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