Detail publikačního výsledku

An In Vitro Corrosion Study of Open Cell Iron Structures with PEG Coating for Bone Replacement Applications

HAVEROVÁ, L.; ORINAKOVÁ, R.; ORIŇAK, A.; GOREJOVÁ, R.; BALÁŽ, M.; VANÝSEK, P.; KUPKOVÁ, M.; HRUBOVČÁKOVÁ, M.; MUDROŇ, P.; RADOŇÁK, J.; ORSÁGOVÁ KRÁLOVÁ, Z.; MOROVSKÁ TUROŇOVÁ, A.

Originální název

An In Vitro Corrosion Study of Open Cell Iron Structures with PEG Coating for Bone Replacement Applications

Anglický název

An In Vitro Corrosion Study of Open Cell Iron Structures with PEG Coating for Bone Replacement Applications

Druh

Článek WoS

Originální abstrakt

Iron-based substrates with polyethylene glycol coating were prepared as possible materials for biodegradable orthopedic implants. Biodegradable materials that provide mechanical support of the diseased tissue at the time of implanting and then disappear gradually during the healing process are sometimes favored instead of permanent implants. The implant degradation rate should match the time of the tissue regrowth. In this work, the degradation behavior of iron-based foams was studied electrochemically during immersion tests in Hanks’ solution. The corrosion rate of the polyethylene glycol-coated samples increased and the corrosion potential shifted to more negative values. This indicates an enhanced degradation rate as compared to the uncoated material, fulfilling the goal of being able to tune the degradation rate. It is the interfacial interaction between the hydrophilic polymer layer and the iron surface that is responsible for the enhanced oxidation rate of iron.

Anglický abstrakt

Iron-based substrates with polyethylene glycol coating were prepared as possible materials for biodegradable orthopedic implants. Biodegradable materials that provide mechanical support of the diseased tissue at the time of implanting and then disappear gradually during the healing process are sometimes favored instead of permanent implants. The implant degradation rate should match the time of the tissue regrowth. In this work, the degradation behavior of iron-based foams was studied electrochemically during immersion tests in Hanks’ solution. The corrosion rate of the polyethylene glycol-coated samples increased and the corrosion potential shifted to more negative values. This indicates an enhanced degradation rate as compared to the uncoated material, fulfilling the goal of being able to tune the degradation rate. It is the interfacial interaction between the hydrophilic polymer layer and the iron surface that is responsible for the enhanced oxidation rate of iron.

Klíčová slova

degradable biomaterials; corrosion; implants; iron; polymer coating layer; polyethylene glycol

Klíčová slova v angličtině

degradable biomaterials; corrosion; implants; iron; polymer coating layer; polyethylene glycol

Autoři

HAVEROVÁ, L.; ORINAKOVÁ, R.; ORIŇAK, A.; GOREJOVÁ, R.; BALÁŽ, M.; VANÝSEK, P.; KUPKOVÁ, M.; HRUBOVČÁKOVÁ, M.; MUDROŇ, P.; RADOŇÁK, J.; ORSÁGOVÁ KRÁLOVÁ, Z.; MOROVSKÁ TUROŇOVÁ, A.

Rok RIV

2019

Vydáno

28.06.2018

Nakladatel

MDPI

ISSN

2075-4701

Periodikum

Metals

Svazek

8

Číslo

7

Stát

Švýcarská konfederace

Strany od

1

Strany do

21

Strany počet

21

URL

Plný text v Digitální knihovně

BibTex

@article{BUT149294,
  author="Lucia {Haverová} and Renáta {Orinaková} and Andrej {Oriňak} and Radka {Gorejová} and Matej {Baláž} and Petr {Vanýsek} and Miriam {Kupková} and Monika {Hrubovčáková} and Pavol {Mudroň} and Jozef {Radoňák} and Zuzana {Orságová Králová} and Andrea {Morovská Turoňová}",
  title="An In Vitro Corrosion Study of Open Cell Iron Structures with PEG Coating for Bone Replacement Applications",
  journal="Metals",
  year="2018",
  volume="8",
  number="7",
  pages="1--21",
  doi="10.3390/met8070499",
  url="http://www.mdpi.com/2075-4701/8/7/499"
}