Cargando…

Polyether Ether Ketone Coated with Ultra-Thin Films of Titanium Oxide and Zirconium Oxide Fabricated by DC Magnetron Sputtering for Biomedical Application

Recently, polyether ether ketone has raised increasing interest in research and industry as an alternative material for bone implants. This polymer also has some shortcomings, as it is bioinert and its surface is relatively hydrophobic, causing poor cell adhesion and therefore slow integration with...

Descripción completa

Detalles Bibliográficos
Autores principales: Akimchenko, Igor O., Rutkowski, Sven, Tran, Tuan-Hoang, Dubinenko, Gleb E., Petrov, Vsevolod I., Kozelskaya, Anna I., Tverdokhlebov, Sergei I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9694952/
https://www.ncbi.nlm.nih.gov/pubmed/36431515
http://dx.doi.org/10.3390/ma15228029
_version_ 1784837934618247168
author Akimchenko, Igor O.
Rutkowski, Sven
Tran, Tuan-Hoang
Dubinenko, Gleb E.
Petrov, Vsevolod I.
Kozelskaya, Anna I.
Tverdokhlebov, Sergei I.
author_facet Akimchenko, Igor O.
Rutkowski, Sven
Tran, Tuan-Hoang
Dubinenko, Gleb E.
Petrov, Vsevolod I.
Kozelskaya, Anna I.
Tverdokhlebov, Sergei I.
author_sort Akimchenko, Igor O.
collection PubMed
description Recently, polyether ether ketone has raised increasing interest in research and industry as an alternative material for bone implants. This polymer also has some shortcomings, as it is bioinert and its surface is relatively hydrophobic, causing poor cell adhesion and therefore slow integration with bone tissue. In order to improve biocompatibility, the surface of polyether ether ketone-based implants should be modified. Therefore, polished disc-shaped polyether ether ketone samples were surface-modified by direct current magnetron sputtering with ultrathin titanium and zirconium coatings (thickness < 100 nm). The investigation results show a uniform distribution of both types of coatings on the sample surfaces, where the coatings mostly consist of titanium dioxide and zirconium dioxide. Differential scanning calorimetry revealed that the crystalline structure of the polyether ether ketone substrates was not changed by the coating deposition. Both coatings are amorphous, as shown by X-ray diffraction investigations. The roughness of both coating types increases with increasing coating thickness, which is beneficial for cell colonization. The coatings presented and investigated in this study improve wettability, increasing surface energies, in particular the polar component of the surface energies, which, in turn, are important for cell adhesion.
format Online
Article
Text
id pubmed-9694952
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96949522022-11-26 Polyether Ether Ketone Coated with Ultra-Thin Films of Titanium Oxide and Zirconium Oxide Fabricated by DC Magnetron Sputtering for Biomedical Application Akimchenko, Igor O. Rutkowski, Sven Tran, Tuan-Hoang Dubinenko, Gleb E. Petrov, Vsevolod I. Kozelskaya, Anna I. Tverdokhlebov, Sergei I. Materials (Basel) Article Recently, polyether ether ketone has raised increasing interest in research and industry as an alternative material for bone implants. This polymer also has some shortcomings, as it is bioinert and its surface is relatively hydrophobic, causing poor cell adhesion and therefore slow integration with bone tissue. In order to improve biocompatibility, the surface of polyether ether ketone-based implants should be modified. Therefore, polished disc-shaped polyether ether ketone samples were surface-modified by direct current magnetron sputtering with ultrathin titanium and zirconium coatings (thickness < 100 nm). The investigation results show a uniform distribution of both types of coatings on the sample surfaces, where the coatings mostly consist of titanium dioxide and zirconium dioxide. Differential scanning calorimetry revealed that the crystalline structure of the polyether ether ketone substrates was not changed by the coating deposition. Both coatings are amorphous, as shown by X-ray diffraction investigations. The roughness of both coating types increases with increasing coating thickness, which is beneficial for cell colonization. The coatings presented and investigated in this study improve wettability, increasing surface energies, in particular the polar component of the surface energies, which, in turn, are important for cell adhesion. MDPI 2022-11-14 /pmc/articles/PMC9694952/ /pubmed/36431515 http://dx.doi.org/10.3390/ma15228029 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
Akimchenko, Igor O.
Rutkowski, Sven
Tran, Tuan-Hoang
Dubinenko, Gleb E.
Petrov, Vsevolod I.
Kozelskaya, Anna I.
Tverdokhlebov, Sergei I.
Polyether Ether Ketone Coated with Ultra-Thin Films of Titanium Oxide and Zirconium Oxide Fabricated by DC Magnetron Sputtering for Biomedical Application
title Polyether Ether Ketone Coated with Ultra-Thin Films of Titanium Oxide and Zirconium Oxide Fabricated by DC Magnetron Sputtering for Biomedical Application
title_full Polyether Ether Ketone Coated with Ultra-Thin Films of Titanium Oxide and Zirconium Oxide Fabricated by DC Magnetron Sputtering for Biomedical Application
title_fullStr Polyether Ether Ketone Coated with Ultra-Thin Films of Titanium Oxide and Zirconium Oxide Fabricated by DC Magnetron Sputtering for Biomedical Application
title_full_unstemmed Polyether Ether Ketone Coated with Ultra-Thin Films of Titanium Oxide and Zirconium Oxide Fabricated by DC Magnetron Sputtering for Biomedical Application
title_short Polyether Ether Ketone Coated with Ultra-Thin Films of Titanium Oxide and Zirconium Oxide Fabricated by DC Magnetron Sputtering for Biomedical Application
title_sort polyether ether ketone coated with ultra-thin films of titanium oxide and zirconium oxide fabricated by dc magnetron sputtering for biomedical application
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9694952/
https://www.ncbi.nlm.nih.gov/pubmed/36431515
http://dx.doi.org/10.3390/ma15228029
work_keys_str_mv AT akimchenkoigoro polyetheretherketonecoatedwithultrathinfilmsoftitaniumoxideandzirconiumoxidefabricatedbydcmagnetronsputteringforbiomedicalapplication
AT rutkowskisven polyetheretherketonecoatedwithultrathinfilmsoftitaniumoxideandzirconiumoxidefabricatedbydcmagnetronsputteringforbiomedicalapplication
AT trantuanhoang polyetheretherketonecoatedwithultrathinfilmsoftitaniumoxideandzirconiumoxidefabricatedbydcmagnetronsputteringforbiomedicalapplication
AT dubinenkoglebe polyetheretherketonecoatedwithultrathinfilmsoftitaniumoxideandzirconiumoxidefabricatedbydcmagnetronsputteringforbiomedicalapplication
AT petrovvsevolodi polyetheretherketonecoatedwithultrathinfilmsoftitaniumoxideandzirconiumoxidefabricatedbydcmagnetronsputteringforbiomedicalapplication
AT kozelskayaannai polyetheretherketonecoatedwithultrathinfilmsoftitaniumoxideandzirconiumoxidefabricatedbydcmagnetronsputteringforbiomedicalapplication
AT tverdokhlebovsergeii polyetheretherketonecoatedwithultrathinfilmsoftitaniumoxideandzirconiumoxidefabricatedbydcmagnetronsputteringforbiomedicalapplication