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Evaluation of in vitro corrosion resistance and in vivo osseointegration properties of a FeMnSiCa alloy as potential degradable implant biomaterial

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dc.contributor.author Trincă, Lucia-Carmen
dc.contributor.author Burtan, Liviu-Cătălin
dc.contributor.author Mareci, Daniel
dc.contributor.author Fernández Pérez, Bibiana M.
dc.contributor.author Stoleriu, Iulian
dc.contributor.author Stanciu, Teodor
dc.contributor.author Stanciu, Sergiu
dc.contributor.author Solcan, Carmen
dc.contributor.author Izquierdo, Javier
dc.contributor.author Souto, Ricardo M.
dc.date.accessioned 2023-03-15T13:26:35Z
dc.date.available 2023-03-15T13:26:35Z
dc.date.issued 2020-07-25
dc.identifier.citation Trincă, Lucia-Carmen, Liviu Burtan, Daniel Mareci, Bibiana M. Fernandez-Pérez, Iulian Stoleriu, Teodor Stanciu, Sergiu Stanciu, Carmen Solcan, Javier Izquierdo, Ricardo M. Souto. 2021. ”Evaluation of in vitro corrosion resistance and in vivo osseointegration properties of a FeMnSiCa alloy as potential degradable implant biomaterial”. Materials Science & Engineering C 118: 111436. https://doi.org/10.1016/j.msec.2020.111436. en_US
dc.identifier.issn 0928-4931
dc.identifier.uri https://repository.iuls.ro/xmlui/handle/20.500.12811/3147
dc.identifier.uri https://www.sciencedirect.com/science/article/pii/S0928493120333543
dc.description.abstract In vitro electrochemical characterization and in vivo implantation in an animal model were employed to evaluate the degradation behaviour and the biological activity of FeMnSi and FeMnSiCa alloys obtained using UltraCast (Ar atmosphere) melting. Electrochemical characterization was based on open circuit potential measurement, electrochemical impedance spectroscopy and potentiodynamic polarization techniques while the alloys were immersed in Ringer's solution at 37 °C for 7 days. Higher corrosion rates were measured for the Cacontaining material, resulting from inefficient passivation of the metal surface by oxy-hydroxide products. In vivo osseointegration was investigated on a tibia implant model in rabbits by referring to a standard control (AISI 316 L) stainless steel using standard biochemical, histological and radiological methods of investigation. Changes in the biochemical parameters were related to the main stages of the bone defect repair, whereas implantation of the alloys in rabbit's tibia provided the necessary mechanical support to the injured bone area and facilitated the growth of the newly connective tissue, as well as osteoid formation and mineralization, as revealed by either histological sections or computed tomography reconstructed images and validated by the bone morphometric indices. The present study highlighted that the FeMnSiCa alloy promotes better osteoinduction and osseconduction processes when compared to the base FeMnSi alloy or with AISI 316 L, and in vivo degradation rates correlate well with corrosion resistance measurements in Ringer's solution. en_US
dc.language.iso en en_US
dc.publisher Elsevier B.V. en_US
dc.rights Attribution-Noncommercial-Noderivs 4.0 International
dc.rights.uri https://creativecommons.org/licenses/by-nc-nd/4.0/
dc.subject Biodegradable implant materials en_US
dc.subject Surface characterization en_US
dc.subject Corrosion resistance en_US
dc.subject FeMnSiCa alloy en_US
dc.subject FeMnSi alloy Osseointegration en_US
dc.subject Osseointegration en_US
dc.title Evaluation of in vitro corrosion resistance and in vivo osseointegration properties of a FeMnSiCa alloy as potential degradable implant biomaterial en_US
dc.type Article en_US
dc.author.affiliation Lucia-Carmen Trincă, Exact Sciences Department, "Ion Ionescu de la Brad" University of Agricultural Sciences and Veterinary Medicine, Faculty of Horticulture, Str. Aleea M. Sadoveanu, no. 3, 700490, Iasi, Romania
dc.author.affiliation Liviu Burtan, Clinics Department, "Ion Ionescu de la Brad" University of Agricultural Sciences and Veterinary Medicine, Faculty of Veterinary Medicine, Str. Aleea M. Sadoveanu, no. 8, 700489, Iasi, Romania
dc.author.affiliation Daniel Mareci, Department of Chemical Engineering, Technical University “Gheorghe Asachi” of Iasi, Faculty of Chemical Engineering and Environmental Protection, D. Mangeron, Iasi, 700050, Romania
dc.author.affiliation Bibiana M. Fernandez-Pérez, Javier Izquierdo, Ricardo M. Souto, Department of Chemistry, Universidad de La Laguna, Avda. Astrofísico Francisco Sánchez s/n, E-38200 La Laguna, Tenerife, Canary Islands, Spain
dc.author.affiliation Iulian Stoleriu, Faculty of Mathematics, “Alexandru Ioan Cuza” University of Iasi, Bd. Carol I, No. 11, 700506, Iasi, Romania
dc.author.affiliation Teodor Stanciu, Sergiu Stanciu, Faculty of Materials Science and Engineering, “Gheorghe Asachi” Technical University of Iasi, Str. Prof. dr. doc. Dimitrie Mangeron, 67, 70005, Iasi, Romania
dc.author.affiliation Carmen Solcan, Preclinics Department, “Ion Ionescu de la Brad” University of Agricultural Sciences and Veterinary Medicine, Faculty of Veterinary Medicine, Str. Aleea M. Sadoveanu, no. 8, 700489, Iasi, Romania
dc.author.affiliation Javier Izquierdo, Ricardo M. Souto, Institute of Material Science and Nanotechnology, Universidad de La Laguna, P.O. Box 456, E-38200 La Laguna, Tenerife, Canary Islands, Spain
dc.publicationName Materials Science & Engineering C
dc.volume 118
dc.publicationDate 2021
dc.identifier.doi 10.1016/j.msec.2020.111436


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Attribution-Noncommercial-Noderivs 4.0 International Except where otherwise noted, this item's license is described as Attribution-Noncommercial-Noderivs 4.0 International