Appropriately Adapted Properties of Hot-extruded Zn-0.5Cu-xFe Alloys Aimed for Biodegradable Guided Bone Regeneration Membrane Application
Overview
Authors
Affiliations
Appropriately adapted comprehensive mechanical properties, degradation behavior and biocompatibility are prerequisites for the application of Zn-based biodegradable implants. In this study, hot-extruded Zn-0.5Cu-xFe (x = 0.1, 0.2 and 0.4 wt%) alloys were fabricated as candidates for biodegradable materials for guided bone regeneration (GBR) membranes. The hot-extrusion process and Cu alloying were expected mostly to enhance the mechanical properties, and the Fe alloying was added mainly for regulating the degradation. The microstructure, mechanical properties and degradation behavior were systematically investigated. The ZnCuFe alloys were composed of a Zn matrix and FeZn phase. With increasing Fe content, a higher FeZn phase precipitation with larger particles was observed. Since elongation declined significantly until fracture with increasing Fe content up to 0.4 wt%, the ZnCuFe (0.2 wt%) alloy achieved a good balance between mechanical strength and ductility, with an ultimate tensile strength of 202.3 MPa and elongation at fracture of 41.2%. Moreover, the addition of Fe successfully accelerated the degradation of ZnCuFe alloys. The ZnCuFe (0.2 wt%) alloy showed relatively uniform corrosion in the long-term degradation test. Furthermore, extracts of the ZnCuFe (0.2 wt%) alloy showed no apparent cytotoxic effects against L929 fibroblasts, Saos-2 osteoblasts or TAg periosteal cells. The ZnCuFe (0.2 wt%) alloy exhibited the potential to inhibit bacterial adhesion of and mixed oral bacteria. Our study provides evidence that the ZnCuFe (0.2 wt%) alloy can represent a promising material for the application as a suitable GBR membrane.
Dong C, Liao Z, Yin Y, Yi Y, Zhu G, Zheng T Sci Rep. 2025; 15(1):5454.
PMID: 39953170 PMC: 11829028. DOI: 10.1038/s41598-025-89748-w.
Enhancing Mechanical and Biodegradation Properties of Zn-0.5Fe Alloys Through Rotary Forging.
Tang L, Chen H, Zhu X, Zubair M, Sun T, Yang L Materials (Basel). 2025; 18(3).
PMID: 39942387 PMC: 11820532. DOI: 10.3390/ma18030722.
Lu C, Song C, Yu Y, Yang L, Zheng W, Luo F Sci Rep. 2024; 14(1):30558.
PMID: 39702751 PMC: 11659618. DOI: 10.1038/s41598-024-78842-0.
Peng W, Lu Z, Liu E, Wu W, Yu S, Sun J J Funct Biomater. 2024; 15(10).
PMID: 39452588 PMC: 11508743. DOI: 10.3390/jfb15100289.
Li X, Shi Z, Tuoliken A, Gou W, Li C, Wang L Bioact Mater. 2024; 42:550-572.
PMID: 39308544 PMC: 11416609. DOI: 10.1016/j.bioactmat.2024.08.049.