School of Materials Science and Engineering, Xiangtan University, Xiangtan 411105, China; School & Hospital of Stomatology, Wenzhou Medical University, Wenzhou 325027, China; Department of Material Engineering, Zhejiang Industry & Trade Vocational College, Wenzhou 325003, China.
School of Materials Science and Engineering, Xiangtan University, Xiangtan 411105, China.
Acta Biomater. 2021 Mar 15;123:407-417. doi: 10.1016/j.actbio.2020.12.059. Epub 2021 Jan 13.
Zinc (Zn)-based alloys have been considered potential biodegradable materials for medical applications due to their good biodegradability and biocompatibility. However, the insufficient mechanical properties of pure Zn do not meet the requirements of biodegradable implants. In this study, we have developed a biodegradable Zn-3Mg-0.7MgSi composite fabricated by high-pressure solidification. Microstructural characterization revealed that the high-pressure solidified (HPS) composite exhibited uniformly distributed fine MgZn granules in an α-Zn matrix. Comprehensive tests indicated that the HPS composite exhibited exceptionally high compression properties including a compressive yield strength of 406.2 MPa, an ultimate compressive strength of 1181.2 MPa, and plastic deformation up to 60% strain without cracking or fracturing. Potentiodynamic polarization tests revealed that the HPS composite showed a corrosion potential of -0.930 V, a corrosion current density of 3.5 μA/cm, and a corrosion rate of 46.2 μm/y. Immersion tests revealed that the degradation rate of the HPS composite after immersion in Hanks' solution for 1 month and 3 months was 42.8 μm/y and 37.8 μm/y, respectively. Furthermore, an extract of the HPS composite exhibited good cytocompatibility compared with as-cast (AC) pure Zn and an AC composite at a concentration of ≤25%. These results suggest that the HPS Zn-3Mg-0.7MgSi composite can be anticipated as a promising biodegradable material for orthopedic applications.
锌 (Zn) 基合金因其良好的生物降解性和生物相容性而被认为是潜在的可生物降解材料,可用于医学应用。然而,纯锌的机械性能不足,无法满足可生物降解植入物的要求。在本研究中,我们通过高压凝固制备了一种可生物降解的 Zn-3Mg-0.7MgSi 复合材料。微观结构表征表明,高压凝固 (HPS) 复合材料具有均匀分布的细 MgZn 颗粒在 α-Zn 基体中。综合测试表明,HPS 复合材料表现出异常高的压缩性能,包括压缩屈服强度为 406.2 MPa,极限压缩强度为 1181.2 MPa,塑性变形高达 60%应变而不会开裂或断裂。动电位极化测试表明,HPS 复合材料表现出 -0.930 V 的腐蚀电位、3.5 μA/cm 的腐蚀电流密度和 46.2 μm/y 的腐蚀速率。浸泡测试表明,HPS 复合材料在 Hanks 溶液中浸泡 1 个月和 3 个月后的降解速率分别为 42.8 μm/y 和 37.8 μm/y。此外,HPS 复合材料的浸提液与铸态 (AC) 纯锌和 AC 复合材料相比,在浓度≤25%时具有良好的细胞相容性。这些结果表明,HPS Zn-3Mg-0.7MgSi 复合材料有望成为一种有前途的骨科应用可生物降解材料。