Back to Search Start Over

Microstructural, mechanical, in vitro corrosion and biological characterization of an extruded Zn-0.8Mg-0.2Sr (wt%) as an absorbable material.

Authors :
Čapek, Jaroslav
Kubásek, Jiří
Pinc, Jan
Fojt, Jaroslav
Krajewski, Stefanie
Rupp, Frank
Li, Ping
Source :
Materials Science & Engineering: C. Mar2021, Vol. 122, pN.PAG-N.PAG. 1p.
Publication Year :
2021

Abstract

Zinc (Zn) alloys seem to be promising candidates for application in orthopaedic or cardiovascular medical implants. In this area, high standards are required regarding the biocompatibility as well as excellent mechanical and tailored degradation properties. In the presented study, a novel Zn-0.8Mg-0.2Sr (wt%) alloy has been fabricated by the combination of casting, homogenization annealing and extrusion at 200 °C. As a consequence of its fine-grained homogenous microstructure, the prepared material is characterized by an excellent combination of tensile yield strength, ultimate tensile strength and elongation corresponding to 244 MPa, 324 MPa and 20% respectively. The in vitro corrosion rates of the Zn-0.8Mg-0.2Sr alloy in the physiological solution and the simulated body fluid were 244 μm/a and 69.8 μm/a, respectively. Furthermore, an extract test revealed that Zn-0.8Mg-0.2Sr extracts diluted to 25% had no adverse effects towards L929 fibroblasts, TAg periosteal cells and Saos-2 osteoblasts. Moreover, the Zn-0.8Mg-0.2Sr surface showed effective inhibition of initial Streptococcus gordonii adhesion and biofilm formation. These results indicated the Zn-0.8Mg-0.2Sr alloy, which has superior mechanical properties, might be a promising candidate for materials used for load-bearing applications. Unlabelled Image • A novel Zn-0.8Mg-0.2Sr (wt%) alloy was fabricated and investigated. • As-extruded Zn-0.8Mg-0.2Sr alloy exhibited superior mechanical properties. • Enhanced Zn ion release from Zn-0.8Mg-0.2Sr alloy was observed compared to pure Zn. • Zn-0.8Mg-0.2Sr extracts showed acceptable cytocompatibility. • Zn-0.8Mg-0.2Sr surface possessed effective antibacterial property. [ABSTRACT FROM AUTHOR]

Subjects

Subjects :
*BIODEGRADATION
*TENSILE strength

Details

Language :
English
ISSN :
09284931
Volume :
122
Database :
Academic Search Index
Journal :
Materials Science & Engineering: C
Publication Type :
Academic Journal
Accession number :
148984696
Full Text :
https://doi.org/10.1016/j.msec.2021.111924