Characteristics of Mg-Based Sintered Alloy with Au Addition

Author:

Lesz Sabina1ORCID,Karolus Małgorzata2ORCID,Gabryś Adrian1,Hrapkowicz Bartłomiej1ORCID,Walke Witold3,Pakieła Wojciech1ORCID,Gołombek Klaudiusz4ORCID,Popis Julia1ORCID,Palček Peter5

Affiliation:

1. Department of Engineering Materials and Biomaterials, Silesian University of Technology, 18a Konarskiego Street, 44-100 Gliwice, Poland

2. Institute of Materials Engineering, University of Silesia, 1a 75 Pulku Piechoty Street, 41-500 Chorzow, Poland

3. Department of Biomaterials and Medical Device Engineering, Silesian University of Technology, Roosevelta 40 Street, 41-800 Zabrze, Poland

4. Materials Research Laboratory, Silesian University of Technology, 18a Konarskiego Street, 44-100 Gliwice, Poland

5. Department of Materials Engineering, Faculty of Mechanical Engineering, University of Žilina, Veľký Diel, SK-010 26 Žilina, Slovakia

Abstract

The magnesium-based alloys produced by mechanical alloying (MA) are characterized by specific porosity, fine-grained structure, and isotropic properties. In addition, alloys containing magnesium, zinc, calcium, and the noble element gold are biocompatible, so they can be used for biomedical implants. The paper assesses selected mechanical properties and the structure of the Mg63Zn30Ca4Au3 as a potential biodegradable biomaterial. The alloy was produced by mechanical synthesis with a milling time of 13 h, and sintered via spark-plasma sintering (SPS) carried out at a temperature of 350 °C and a compaction pressure of 50 MPa, with a holding time of 4 min and a heating rate of 50 °C∙min−1 to 300 °C and 25 °C∙min−1 from 300 to 350 °C. The article presents the results of the X-ray diffraction (XRD) method, density, scanning electron microscopy (SEM), particle size distributions, and Vickers microhardness and electrochemical properties via electrochemical impedance spectroscopy (EIS) and potentiodynamic immersion testing. The obtained results reveal the compressive strength of 216 MPa and Young’s modulus of 2530 MPa. The structure comprises MgZn2 and Mg3Au phases formed during the mechanical synthesis, and Mg7Zn3 that has been formed during the sintering process. Although MgZn2 and Mg7Zn3 improve the corrosion resistance of the Mg-based alloys, it has been revealed that the double layer formed because of contact with the Ringer’s solution is not an effective barrier; hence, more data and optimization are necessary.

Funder

National Science Center, Poland

Publisher

MDPI AG

Subject

General Materials Science

Reference38 articles.

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2. Kelsall, R.W., Hamley, I.W., and Geoghegan, M. (2008). Nanotechnologies, Polish Scientific Publishers PWN.

3. Characterization of Mg-Zn-Ca-Y powders manufactured by mechanical milling;Lesz;J. Achiev. Mater. Manuf. Eng.,2020

4. Microstructure and compressive properties of AlCrFeCoNi high entropy alloy;Wang;Mater. Sci. Eng. A,2008

5. Jurczyk, M. (2003). Mechanical Alloying, Publishing House of the Poznań University of Technology.

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