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Zn- or Cu-Containing CaP-Based Coatings Formed by Micro-arc Oxidation on Titanium and Ti-40Nb Alloy: Part I—Microstructure, Composition and Properties

Zn- and Cu-containing CaP-based coatings, obtained by micro-arc oxidation process, were deposited on substrates made of pure titanium (Ti) and novel Ti-40Nb alloy. The microstructure, phase, and elemental composition, as well as physicochemical and mechanical properties, were examined for unmodified...

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Autores principales: Komarova, Ekaterina G., Sharkeev, Yurii P., Sedelnikova, Mariya B., Prosolov, Konstantin A., Khlusov, Igor A., Prymak, Oleg, Epple, Matthias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7560402/
https://www.ncbi.nlm.nih.gov/pubmed/32947970
http://dx.doi.org/10.3390/ma13184116
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author Komarova, Ekaterina G.
Sharkeev, Yurii P.
Sedelnikova, Mariya B.
Prosolov, Konstantin A.
Khlusov, Igor A.
Prymak, Oleg
Epple, Matthias
author_facet Komarova, Ekaterina G.
Sharkeev, Yurii P.
Sedelnikova, Mariya B.
Prosolov, Konstantin A.
Khlusov, Igor A.
Prymak, Oleg
Epple, Matthias
author_sort Komarova, Ekaterina G.
collection PubMed
description Zn- and Cu-containing CaP-based coatings, obtained by micro-arc oxidation process, were deposited on substrates made of pure titanium (Ti) and novel Ti-40Nb alloy. The microstructure, phase, and elemental composition, as well as physicochemical and mechanical properties, were examined for unmodified CaP and Zn- or Cu-containing CaP coatings, in relation to the applied voltage that was varied in the range from 200 to 350 V. The unmodified CaP coatings on both types of substrates had mainly an amorphous microstructure with a minimal content of the CaHPO(4) phase for all applied voltages. The CaP coatings modified with Zn or Cu had a range from amorphous to nano- and microcrystalline structure that contained micro-sized CaHPO(4) and Ca(H(2)PO(4))(2)·H(2)O phases, as well as nano-sized β-Ca(2)P(2)O(7), CaHPO(4), TiO(2), and Nb(2)O(5) phases. The crystallinity of the formed coatings increased in the following order: CaP/TiNb < Zn-CaP/TiNb < Cu-CaP/TiNb < CaP/Ti < Zn-CaP/Ti < Cu-CaP/Ti. The increase in the applied voltage led to a linear increase in thickness, roughness, and porosity of all types of coatings, unlike adhesive strength that was inversely proportional to an increase in the applied voltage. The increase in the applied voltage did not affect the Zn or Cu concentration (~0.4 at%), but led to an increase in the Ca/P atomic ratio from 0.3 to 0.7.
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spelling pubmed-75604022020-10-22 Zn- or Cu-Containing CaP-Based Coatings Formed by Micro-arc Oxidation on Titanium and Ti-40Nb Alloy: Part I—Microstructure, Composition and Properties Komarova, Ekaterina G. Sharkeev, Yurii P. Sedelnikova, Mariya B. Prosolov, Konstantin A. Khlusov, Igor A. Prymak, Oleg Epple, Matthias Materials (Basel) Article Zn- and Cu-containing CaP-based coatings, obtained by micro-arc oxidation process, were deposited on substrates made of pure titanium (Ti) and novel Ti-40Nb alloy. The microstructure, phase, and elemental composition, as well as physicochemical and mechanical properties, were examined for unmodified CaP and Zn- or Cu-containing CaP coatings, in relation to the applied voltage that was varied in the range from 200 to 350 V. The unmodified CaP coatings on both types of substrates had mainly an amorphous microstructure with a minimal content of the CaHPO(4) phase for all applied voltages. The CaP coatings modified with Zn or Cu had a range from amorphous to nano- and microcrystalline structure that contained micro-sized CaHPO(4) and Ca(H(2)PO(4))(2)·H(2)O phases, as well as nano-sized β-Ca(2)P(2)O(7), CaHPO(4), TiO(2), and Nb(2)O(5) phases. The crystallinity of the formed coatings increased in the following order: CaP/TiNb < Zn-CaP/TiNb < Cu-CaP/TiNb < CaP/Ti < Zn-CaP/Ti < Cu-CaP/Ti. The increase in the applied voltage led to a linear increase in thickness, roughness, and porosity of all types of coatings, unlike adhesive strength that was inversely proportional to an increase in the applied voltage. The increase in the applied voltage did not affect the Zn or Cu concentration (~0.4 at%), but led to an increase in the Ca/P atomic ratio from 0.3 to 0.7. MDPI 2020-09-16 /pmc/articles/PMC7560402/ /pubmed/32947970 http://dx.doi.org/10.3390/ma13184116 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Komarova, Ekaterina G.
Sharkeev, Yurii P.
Sedelnikova, Mariya B.
Prosolov, Konstantin A.
Khlusov, Igor A.
Prymak, Oleg
Epple, Matthias
Zn- or Cu-Containing CaP-Based Coatings Formed by Micro-arc Oxidation on Titanium and Ti-40Nb Alloy: Part I—Microstructure, Composition and Properties
title Zn- or Cu-Containing CaP-Based Coatings Formed by Micro-arc Oxidation on Titanium and Ti-40Nb Alloy: Part I—Microstructure, Composition and Properties
title_full Zn- or Cu-Containing CaP-Based Coatings Formed by Micro-arc Oxidation on Titanium and Ti-40Nb Alloy: Part I—Microstructure, Composition and Properties
title_fullStr Zn- or Cu-Containing CaP-Based Coatings Formed by Micro-arc Oxidation on Titanium and Ti-40Nb Alloy: Part I—Microstructure, Composition and Properties
title_full_unstemmed Zn- or Cu-Containing CaP-Based Coatings Formed by Micro-arc Oxidation on Titanium and Ti-40Nb Alloy: Part I—Microstructure, Composition and Properties
title_short Zn- or Cu-Containing CaP-Based Coatings Formed by Micro-arc Oxidation on Titanium and Ti-40Nb Alloy: Part I—Microstructure, Composition and Properties
title_sort zn- or cu-containing cap-based coatings formed by micro-arc oxidation on titanium and ti-40nb alloy: part i—microstructure, composition and properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7560402/
https://www.ncbi.nlm.nih.gov/pubmed/32947970
http://dx.doi.org/10.3390/ma13184116
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