State Key Laboratory of Rare Earth Resources Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, PR China.
Mater Sci Eng C Mater Biol Appl. 2013 May 1;33(4):2345-52. doi: 10.1016/j.msec.2013.01.063. Epub 2013 Feb 4.
Mg-1.5Y-1.2Zn-0.44Zr alloys were newly developed as degradable metallic biomaterials. A comprehensive investigation of the microstructure, mechanical properties, in vitro degradation assessments and in vitro cytotoxicity evaluations of the as-cast state, as-heat treated state and as-extruded state alloys was done. The microstructure observations show that the Mg-1.5Y-1.2Zn-0.44Zr alloys are mainly composed of the matrix α-Mg phases and the Mg12ZnY secondary phases (LPS structure). The hot extrusion method significantly refined the grains and eliminated the defects of both as-cast and heat treated alloys and thereby contributed to the better mechanical properties and biodegradation resistance. The values of tensile strength and tensile yield strength of the alloy in the as-extruded condition are about 236 and 178 MPa respectively, with an excellent elongation of 28%. Meanwhile, the value of compressive strength is about 471 MPa and the value of bending strength is about 501 MPa. The superior bending strength further demonstrates the excellent ductility of the hot extruded alloys. The results of immersion tests and electrochemical measurements in the SBF indicate that a protective film precipitated on the alloy's surface with the extension of degradation. The protective film contains Mg(OH)2 and hydroxyapatite (HA) which can reinforce osteoblast activity and promote good biocompatibility. No significant cytotoxicity towards L-929 cells was detected and the immersion extracts of alloy samples could enhance the cell proliferation with time in the cytotoxicity evaluations, implying that the Mg-1.5Y-1.2Zn-0.44Zr alloys have the potential to be used for biomedical applications.
新型可降解金属生物材料 Mg-1.5Y-1.2Zn-0.44Zr 合金。对铸态、热态和挤压态合金的微观结构、力学性能、体外降解评估和体外细胞毒性评价进行了综合研究。微观结构观察表明,Mg-1.5Y-1.2Zn-0.44Zr 合金主要由基体α-Mg 相和 Mg12ZnY 次生相(LPS 结构)组成。热挤压法显著细化了晶粒,消除了铸态和热态合金的缺陷,从而提高了力学性能和抗降解能力。挤压态合金的拉伸强度和屈服强度分别约为 236MPa 和 178MPa,伸长率高达 28%。同时,压缩强度约为 471MPa,弯曲强度约为 501MPa。优异的弯曲强度进一步证明了热挤压合金具有优异的延展性。在 SBF 中的浸泡试验和电化学测量结果表明,随着降解的进行,在合金表面沉淀出一层保护膜。该保护膜含有 Mg(OH)2和羟基磷灰石(HA),能增强成骨细胞活性,促进良好的生物相容性。对 L-929 细胞无明显细胞毒性,合金样品浸提液在细胞毒性评价中随时间推移能增强细胞增殖,表明 Mg-1.5Y-1.2Zn-0.44Zr 合金具有生物医学应用的潜力。