Department of Ceramics, Materials and Energy Research Center, Karaj, Iran.
Department of Ceramics, Materials and Energy Research Center, Karaj, Iran.
J Mech Behav Biomed Mater. 2024 Mar;151:106380. doi: 10.1016/j.jmbbm.2024.106380. Epub 2024 Jan 4.
This study investigated the mechanical, microstructural, and biological properties of 3Y-TZP/Ti6Al4V functionally graded material (FGM) fabricated by the spark plasma sintering (SPS) method. For this purpose, 11 layers of 100-x vol% Ti6Al4V/x vol% Yttria stabilized zirconia (YSZ) (x = 0 to 100) were sintered at 1450 °C and a pressure of 30 MPa for 8 min. To investigate the properties of each layer in more detail, 11 batches of 100-x vol% (Ti6Al4V)/x vol% YSZ (x = 0 to 100) composites were sintered separately with the same sintering conditions mentioned for the FGM sample. Phase identification of the FGM sample showed the formation of TiO, c-ZrO and ZrO phases as by-products. A schematic model was proposed for the formation of the mentioned phases with the aid of thermodynamic calculations. The formation of these phases was confirmed by microstructural and elemental tests. The results of the relative density of the samples showed that these values were obtained for each layer above 99%. The microhardness of 590 ± 18 Vickers was obtained for Ti6Al4V; by increasing the amount of 3Y-TZP, this value reached 1510 ± 24 Vickers for the YSZ sample. The fracture toughness value for Ti6Al4V was 39.2 ± 2 MPa m, which was significantly reduced to 4.84 ± 1 MPa m by adding 10 vol% YSZ. After that, with the further increase of YSZ, this value increased slowly. A similar trend was observed for the bending strength of the samples. By increasing 3Y-TZP from 0 to 30 vol%, the bending strength was decreased from 1556 ± 32 to 272 ± 62 MPa. By further increasing the amount of 3Y-TZP from 30 to 100 vol%, an increase in the bending strength was observed in the samples, which reached 1180 ± 71 MPa for the YSZ sample. The FGM sample showed a brittle fracture despite a metal layer, but a higher bending strength (982 ± 44 MPa) was obtained for this structure than the composite samples. The biological results show that increasing YSZ content leads to a decrease in antimicrobial activity. Additionally, all samples demonstrated high biocompatibility based on MTT cytotoxicity tests after 1 and 7 days of culture.
这项研究调查了通过火花等离子烧结(SPS)方法制造的 3Y-TZP/Ti6Al4V 功能梯度材料(FGM)的机械、微观结构和生物学特性。为此,将 11 层 100-x vol% Ti6Al4V/x vol% Yttria 稳定氧化锆(YSZ)(x = 0 至 100)在 1450°C 和 30 MPa 的压力下烧结 8 分钟。为了更详细地研究每个层的特性,将 11 批 100-x vol%(Ti6Al4V)/x vol% YSZ(x = 0 至 100)复合材料分别在上述 FGM 样品相同的烧结条件下烧结。FGM 样品的物相鉴定表明形成了 TiO、c-ZrO 和 ZrO 等副产物。借助热力学计算提出了形成所述相的示意模型。通过微观结构和元素测试证实了这些相的形成。样品相对密度的结果表明,每个层的相对密度均高于 99%。Ti6Al4V 的显微硬度为 590±18 维氏硬度,随着 3Y-TZP 含量的增加,YSZ 样品的显微硬度达到 1510±24 维氏硬度。Ti6Al4V 的断裂韧性值为 39.2±2 MPa·m,添加 10 vol% YSZ 后显著降低至 4.84±1 MPa·m。此后,随着 YSZ 的进一步增加,该值缓慢增加。样品的弯曲强度也呈现出类似的趋势。随着 3Y-TZP 从 0 增加到 30 体积%,弯曲强度从 1556±32 降低到 272±62 MPa。进一步增加 3Y-TZP 的含量从 30 增加到 100 体积%,观察到样品的弯曲强度增加,YSZ 样品达到 1180±71 MPa。尽管有金属层,但 FGM 样品表现出脆性断裂,但与复合材料样品相比,该结构获得了更高的弯曲强度(982±44 MPa)。生物学结果表明,随着 YSZ 含量的增加,抗菌活性降低。此外,所有样品在培养 1 天和 7 天后的 MTT 细胞毒性试验中均表现出高度的生物相容性。