Department of Material Engineering, Zhejiang Industry & Trade Vocational College, Wenzhou 325003, PR China; School of Materials Science and Engineering, Xiangtan University, Xiangtan 411105, PR China.
Key Laboratory of Materials Physics, Institute of Solid State Physics, Chinese Academy of Sciences, Hefei 230031, PR China.
Acta Biomater. 2020 Apr 1;106:410-427. doi: 10.1016/j.actbio.2020.02.017. Epub 2020 Feb 14.
Zinc (Zn) alloys are receiving increasing attention in the field of biodegradable implant materials due to their unique combination of suitable biodegradability and good biological functionalities. However, the currently existing industrial Zn alloys are not necessarily biocompatible, nor sufficiently mechanically strong and wear-resistant. In this study, a Zn-1Cu-0.1Ti alloy is developed with enhanced mechanical strength, corrosion wear property, biocompatibility, and antibacterial ability for biodegradable implant material applications. HR and HR + CR were performed on the as-cast alloy and its microstructure, mechanical properties, frictional and wear behaviors, corrosion resistance, in vitro cytocompatibility, and antibacterial ability were systematically assessed. The microstructures of the Zn-1Cu-0.1Ti alloy after different deformation conditions included a η-Zn phase, a ε-CuZn phase, and an intermetallic phase of TiZn. The HR+CR sample of Zn-1Cu-0.1Ti exhibited a yield strength of 204.2 MPa, an ultimate tensile strength of 249.9 MPa, and an elongation of 75.2%; significantly higher than those of the HR alloy and the AC alloy. The degradation rate in Hanks' solution was 0.029 mm/y for the AC alloy, 0.032 mm/y for the HR+CR alloy, and 0.034 mm/y for the HR alloy. The HR Zn-1Cu-0.1Ti alloy showed the best wear resistance, followed by the AC alloy and the alloy after HR + CR. The extract of the AC Zn-1Cu-0.1Ti alloy showed over 80% cell viability with MC3T3-E1 pre-osteoblast and MG-63 osteosarcoma cells at a concentration of ≤ 25%. The as-cast Zn-1Cu-0.1Ti alloy showed good blood compatibility and antibacterial ability. STATEMENT OF SIGNIFICANCE: This work repots a Zn-1Cu-0.1Ti alloy with enhanced mechanical strength, corrosion wear property, biocompatibility, and antibacterial ability for biodegradable implant applications. Our findings showed that Zn-1Cu-0.1Ti after hot-rolling plus cold-rolling exhibited a yield strength of 204.2 MPa, an ultimate tensile strength of 249.9 MPa, an elongation of 75.2%, and a degradation rate of 0.032 mm/y in Hanks' Solution. The hot-rolled Zn-1Cu-0.1Ti showed the best wear resistance. The extract of the as-cast alloy at a concentration of ≤ 25% showed over 80% cell viability with MC3T3-E1 and MG-63 cells. The Zn-1Cu-0.1Ti alloy showed good hemocompatibility and antibacterial ability.
锌(Zn)合金由于其独特的合适生物降解性和良好的生物功能相结合,在可生物降解植入材料领域受到越来越多的关注。然而,目前现有的工业 Zn 合金不一定具有生物相容性,也没有足够的机械强度和耐磨性。在这项研究中,开发了一种 Zn-1Cu-0.1Ti 合金,具有增强的机械强度、腐蚀磨损性能、生物相容性和抗菌能力,可用于可生物降解植入材料应用。对铸态合金及其微观结构、力学性能、摩擦磨损性能、耐腐蚀性、体外细胞相容性和抗菌能力进行了 HR 和 HR+CR 处理。经过不同变形条件的 Zn-1Cu-0.1Ti 合金的微观结构包括η-Zn 相、ε-CuZn 相和 TiZn 金属间化合物相。Zn-1Cu-0.1Ti 的 HR+CR 样品表现出 204.2 MPa 的屈服强度、249.9 MPa 的极限拉伸强度和 75.2%的伸长率;明显高于 HR 合金和 AC 合金。在 Hank's 溶液中的降解速率为 0.029 mm/y 的 AC 合金、0.032 mm/y 的 HR+CR 合金和 0.034 mm/y 的 HR 合金。HR Zn-1Cu-0.1Ti 合金表现出最佳的耐磨性,其次是 AC 合金和 HR+CR 后的合金。AC Zn-1Cu-0.1Ti 合金的提取物在浓度≤25%时,对 MC3T3-E1 前成骨细胞和 MG-63 骨肉瘤细胞的细胞活力超过 80%。铸态 Zn-1Cu-0.1Ti 合金具有良好的血液相容性和抗菌能力。研究意义:本工作报道了一种 Zn-1Cu-0.1Ti 合金,具有增强的机械强度、腐蚀磨损性能、生物相容性和抗菌能力,可用于可生物降解植入物应用。我们的研究结果表明,经过热轧和冷轧后的 Zn-1Cu-0.1Ti 表现出 204.2 MPa 的屈服强度、249.9 MPa 的极限拉伸强度、75.2%的伸长率和在 Hank's 溶液中的 0.032 mm/y 的降解速率。热轧 Zn-1Cu-0.1Ti 表现出最佳的耐磨性。铸态合金在浓度≤25%的提取物对 MC3T3-E1 和 MG-63 细胞的细胞活力超过 80%。Zn-1Cu-0.1Ti 合金具有良好的血液相容性和抗菌能力。