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Improving the radiopacity of Fe–Mn biodegradable metals by magnetron-sputtered W–Fe–Mn–C coatings: Application for thinner stents

In this exploratory work, micrometric radiopaque W–Fe–Mn–C coatings were produced by magnetron sputtering plasma deposition, for the first time, with the aim to make very thin Fe–Mn stents trackable by fluoroscopy. The power of Fe–13Mn-1.2C target was kept constant at 400 W while that of W target va...

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Autores principales: Ravanbakhsh, Samira, Paternoster, Carlo, Barucca, Gianni, Mengucci, Paolo, Gambaro, Sofia, Lescot, Theophraste, Chevallier, Pascale, Fortin, Marc-André, Mantovani, Diego
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8777240/
https://www.ncbi.nlm.nih.gov/pubmed/35087963
http://dx.doi.org/10.1016/j.bioactmat.2021.10.022
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author Ravanbakhsh, Samira
Paternoster, Carlo
Barucca, Gianni
Mengucci, Paolo
Gambaro, Sofia
Lescot, Theophraste
Chevallier, Pascale
Fortin, Marc-André
Mantovani, Diego
author_facet Ravanbakhsh, Samira
Paternoster, Carlo
Barucca, Gianni
Mengucci, Paolo
Gambaro, Sofia
Lescot, Theophraste
Chevallier, Pascale
Fortin, Marc-André
Mantovani, Diego
author_sort Ravanbakhsh, Samira
collection PubMed
description In this exploratory work, micrometric radiopaque W–Fe–Mn–C coatings were produced by magnetron sputtering plasma deposition, for the first time, with the aim to make very thin Fe–Mn stents trackable by fluoroscopy. The power of Fe–13Mn-1.2C target was kept constant at 400 W while that of W target varied from 100 to 400 W producing three different coatings referred to as P100, P200, P400. The effect of the increased W power on coatings thickness, roughness, structure, corrosion behavior and radiopacity was investigated. The coatings showed a power-dependent thickness and W concentration, different roughness values while a similar and uniform columnar structure. An amorphous phase was detected for both P100 and P200 coatings while γ-Fe, bcc-W and W(3)C phases found for P400. Moreover, P200 and P400 showed a significantly higher corrosion rate (CR) compared to P100. The presence of W, W(3)C as well as the Fe amount variation determined two different micro-galvanic corrosion mechanisms significantly changing the CR of coatings, 0.26 ± 0.02, 59.68 ± 1.21 and 59.06 ± 1.16 μm/year for P100, P200 and P400, respectively. Sample P200 with its most uniform morphology, lowest roughness (RMS = 3.9 ± 0.4 nm) and good radiopacity (∼6%) appeared the most suitable radiopaque biodegradable coating investigated in this study.
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spelling pubmed-87772402022-01-26 Improving the radiopacity of Fe–Mn biodegradable metals by magnetron-sputtered W–Fe–Mn–C coatings: Application for thinner stents Ravanbakhsh, Samira Paternoster, Carlo Barucca, Gianni Mengucci, Paolo Gambaro, Sofia Lescot, Theophraste Chevallier, Pascale Fortin, Marc-André Mantovani, Diego Bioact Mater Article In this exploratory work, micrometric radiopaque W–Fe–Mn–C coatings were produced by magnetron sputtering plasma deposition, for the first time, with the aim to make very thin Fe–Mn stents trackable by fluoroscopy. The power of Fe–13Mn-1.2C target was kept constant at 400 W while that of W target varied from 100 to 400 W producing three different coatings referred to as P100, P200, P400. The effect of the increased W power on coatings thickness, roughness, structure, corrosion behavior and radiopacity was investigated. The coatings showed a power-dependent thickness and W concentration, different roughness values while a similar and uniform columnar structure. An amorphous phase was detected for both P100 and P200 coatings while γ-Fe, bcc-W and W(3)C phases found for P400. Moreover, P200 and P400 showed a significantly higher corrosion rate (CR) compared to P100. The presence of W, W(3)C as well as the Fe amount variation determined two different micro-galvanic corrosion mechanisms significantly changing the CR of coatings, 0.26 ± 0.02, 59.68 ± 1.21 and 59.06 ± 1.16 μm/year for P100, P200 and P400, respectively. Sample P200 with its most uniform morphology, lowest roughness (RMS = 3.9 ± 0.4 nm) and good radiopacity (∼6%) appeared the most suitable radiopaque biodegradable coating investigated in this study. KeAi Publishing 2021-10-26 /pmc/articles/PMC8777240/ /pubmed/35087963 http://dx.doi.org/10.1016/j.bioactmat.2021.10.022 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Ravanbakhsh, Samira
Paternoster, Carlo
Barucca, Gianni
Mengucci, Paolo
Gambaro, Sofia
Lescot, Theophraste
Chevallier, Pascale
Fortin, Marc-André
Mantovani, Diego
Improving the radiopacity of Fe–Mn biodegradable metals by magnetron-sputtered W–Fe–Mn–C coatings: Application for thinner stents
title Improving the radiopacity of Fe–Mn biodegradable metals by magnetron-sputtered W–Fe–Mn–C coatings: Application for thinner stents
title_full Improving the radiopacity of Fe–Mn biodegradable metals by magnetron-sputtered W–Fe–Mn–C coatings: Application for thinner stents
title_fullStr Improving the radiopacity of Fe–Mn biodegradable metals by magnetron-sputtered W–Fe–Mn–C coatings: Application for thinner stents
title_full_unstemmed Improving the radiopacity of Fe–Mn biodegradable metals by magnetron-sputtered W–Fe–Mn–C coatings: Application for thinner stents
title_short Improving the radiopacity of Fe–Mn biodegradable metals by magnetron-sputtered W–Fe–Mn–C coatings: Application for thinner stents
title_sort improving the radiopacity of fe–mn biodegradable metals by magnetron-sputtered w–fe–mn–c coatings: application for thinner stents
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8777240/
https://www.ncbi.nlm.nih.gov/pubmed/35087963
http://dx.doi.org/10.1016/j.bioactmat.2021.10.022
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