Corrosion, mechanical and biological properties of biodegradable WE43 alloy modified by Al ion implantation
Author:
Publisher
Elsevier BV
Subject
Materials Chemistry,Surfaces, Coatings and Films,Process Chemistry and Technology,Ceramics and Composites,Electronic, Optical and Magnetic Materials
Reference47 articles.
1. A review of the physiological impact of rare earth elements and their uses in biomedical Mg alloys;Weng;Acta Biomater.,2021
2. Design of magnesium alloys with controllable degradation for biomedical implants: from bulk to surface;Li;Acta Biomater.,2016
3. Influence of simultaneous alloying with Ca and Sc on the high temperature deformation mechanism, texture, and recrystallization behavior of Mg-Ca-Sc alloys;Singh;Mater. Char.,2021
4. Microstructure controls the corrosion behavior of a lean biodegradable Mg-2Zn alloy;Wang;Acta Biomater.,2020
5. Effect of Zn film thickness on corrosion resistance and mechanical properties of WE43 alloy;Li;Mater. Char.,2021
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1. Effect of Gd on microstructure and corrosion resistance of as-cast Mg97Zn1Y2 alloy;Journal of Alloys and Compounds;2024-09
2. Surface engineering of pure magnesium in medical implant applications;Heliyon;2024-06
3. Surface modification of nickel-phosphorus plating by Ti ion implantation for chalcogenide glass lens molding;Surfaces and Interfaces;2024-05
4. Effects of metal ion implantation (Fe, Ti, Zn and Zr) on mechanical properties, corrosion resistance and biocompatibility of WE43 Mg alloy;Journal of Magnesium and Alloys;2024-05
5. Surface modification of iron-zinc ions incorporated calcium phosphate biocomposite flexible films for biomedical applications;Materials Today Communications;2024-03
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