Improving the corrosion resistance of ZEK100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coating

Magnesium alloys have better biocompatibility and biodegradability than conventional biomedical metal materials, but the corrosion resistance is so poor that the implant loses its mechanical integrity before the damaged tissue completely recovers. In this study, the ZEK100 magnesium alloy was pre-de...

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Main Authors: Qite Li, Wenbo Ye, Hong Gao, Lilan Gao
Format: Article
Language:English
Published: Elsevier 2019-11-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127519303715
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spelling doaj-b1fadcb42237403e8d5f52413d11c53c2020-11-25T01:23:28ZengElsevierMaterials & Design0264-12752019-11-01181Improving the corrosion resistance of ZEK100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coatingQite Li0Wenbo Ye1Hong Gao2Lilan Gao3School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, ChinaSchool of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, ChinaSchool of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China; Corresponding authors.School of Mechanical Engineering, Tianjin University of Technology, Tianjin 300384, China; Corresponding authors.Magnesium alloys have better biocompatibility and biodegradability than conventional biomedical metal materials, but the corrosion resistance is so poor that the implant loses its mechanical integrity before the damaged tissue completely recovers. In this study, the ZEK100 magnesium alloy was pre-deformed with a high-pressure torsion (HPT) process and then fabricated hydroxyapatite (HA) coatings with different contents of Mg(OH)2 nanopowder via hydrothermal method. The specimens were characterized by scanning electron microscope (SEM) and X-ray diffraction (XRD). Meanwhile, the corrosion behavior of the specimens was evaluated by electrochemical impedance spectroscopy (EIS) and hydrogen evolution tests. Results showed that HPT processing refined the grain size and introduced a great number of twins, resulting in the enhancement of microhardness and Young's modulus of ZEK100. The abundant fine grains, twins and grain boundaries in HPT-ZEK100 can provide more nucleation sites for the HA crystal, resulting in a denser, thicker HA coating with smaller crystal sizes. In terms of the amount of Mg(OH)2 nanopowder, a 0.3 mg/mL content was most appropriate for the deposition of HA. In addition, HPT technique and surface modification by HA coating simultaneously reduced the corrosion rate of ZEK100 magnesium alloy, which virtually expands the biological application of magnesium alloys. Keywords: High-pressure torsion (HPT), Surface modification, Hydroxyapatite (HA), Mg(OH)2, Corrosion resistancehttp://www.sciencedirect.com/science/article/pii/S0264127519303715
collection DOAJ
language English
format Article
sources DOAJ
author Qite Li
Wenbo Ye
Hong Gao
Lilan Gao
spellingShingle Qite Li
Wenbo Ye
Hong Gao
Lilan Gao
Improving the corrosion resistance of ZEK100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coating
Materials & Design
author_facet Qite Li
Wenbo Ye
Hong Gao
Lilan Gao
author_sort Qite Li
title Improving the corrosion resistance of ZEK100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coating
title_short Improving the corrosion resistance of ZEK100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coating
title_full Improving the corrosion resistance of ZEK100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coating
title_fullStr Improving the corrosion resistance of ZEK100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coating
title_full_unstemmed Improving the corrosion resistance of ZEK100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coating
title_sort improving the corrosion resistance of zek100 magnesium alloy by combining high-pressure torsion technology with hydroxyapatite coating
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2019-11-01
description Magnesium alloys have better biocompatibility and biodegradability than conventional biomedical metal materials, but the corrosion resistance is so poor that the implant loses its mechanical integrity before the damaged tissue completely recovers. In this study, the ZEK100 magnesium alloy was pre-deformed with a high-pressure torsion (HPT) process and then fabricated hydroxyapatite (HA) coatings with different contents of Mg(OH)2 nanopowder via hydrothermal method. The specimens were characterized by scanning electron microscope (SEM) and X-ray diffraction (XRD). Meanwhile, the corrosion behavior of the specimens was evaluated by electrochemical impedance spectroscopy (EIS) and hydrogen evolution tests. Results showed that HPT processing refined the grain size and introduced a great number of twins, resulting in the enhancement of microhardness and Young's modulus of ZEK100. The abundant fine grains, twins and grain boundaries in HPT-ZEK100 can provide more nucleation sites for the HA crystal, resulting in a denser, thicker HA coating with smaller crystal sizes. In terms of the amount of Mg(OH)2 nanopowder, a 0.3 mg/mL content was most appropriate for the deposition of HA. In addition, HPT technique and surface modification by HA coating simultaneously reduced the corrosion rate of ZEK100 magnesium alloy, which virtually expands the biological application of magnesium alloys. Keywords: High-pressure torsion (HPT), Surface modification, Hydroxyapatite (HA), Mg(OH)2, Corrosion resistance
url http://www.sciencedirect.com/science/article/pii/S0264127519303715
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