Liu Jue, Ruan Jianming, Chang Lin, Yang Hailin, Ruan Wei
State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, PR China.
State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, PR China.
Mater Sci Eng C Mater Biol Appl. 2017 Sep 1;78:503-512. doi: 10.1016/j.msec.2017.04.088. Epub 2017 Apr 19.
Porous Nb-Ti-Ta (at.%) alloys with the pore size of 100-600μm and the porosity of 50%-80% were fabricated by the combination of the sponge impregnation technique and sintering method. The results revealed that the pores were well connected with three-dimensional (3D) network structure, which showed morphological similarity to the anisotropic porous structure of human bones. The results also showed that the alloys could provide the compressive Young's modulus of 0.11±0.01GPa to 2.08±0.09GPa and the strength of 17.45±2.76MPa to 121.67±1.76MPa at different level of porosity, indicating that the mechanical properties of the alloys are similar to those of human bones. Pore structure on the compressive properties was also discussed on the basis of the deformation mode. The relationship between compressive properties and porosity was well consistent with the Gibson-Ashby model. The mechanical properties could be tailored to match different requirements of the human bones. Moreover, the alloys had good biocompatibility due to the porous structure with higher surface, which were suitable for apatite formation and cell adhesion. In conclusion, the porous Nb-Ti-Ta alloy is potentially useful in the hard tissue implants for the appropriate mechanical properties as well as the good biocompatible properties.
采用海绵浸渍技术与烧结方法相结合的方式制备了孔径为100 - 600μm、孔隙率为50% - 80%的多孔Nb - Ti - Ta(原子百分比)合金。结果表明,孔隙通过三维(3D)网络结构良好连通,其形态与人体骨骼的各向异性多孔结构相似。结果还表明,在不同孔隙率水平下,该合金的压缩杨氏模量为0.11±0.01GPa至2.08±0.09GPa,强度为17.45±2.76MPa至121.67±1.76MPa,这表明该合金的力学性能与人体骨骼相似。基于变形模式还讨论了孔隙结构对压缩性能的影响。压缩性能与孔隙率之间的关系与吉布森 - 阿什比模型高度吻合。力学性能可进行调整以匹配人体骨骼的不同需求。此外,由于具有较高比表面积的多孔结构,该合金具有良好的生物相容性,适合磷灰石形成和细胞黏附。总之,多孔Nb - Ti - Ta合金因其合适的力学性能以及良好的生物相容性,在硬组织植入物方面具有潜在应用价值。