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Toughening and strengthening mechanisms of porous akermanite scaffolds reinforced with nano-titania

机译:纳米二氧化钛增强多孔钙钛矿支架的增韧与强化机理

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摘要

Akermanite possesses excellent biocompatibility and biodegradability, while low fracture toughness and brittleness have limited its use in load bearing sites of bone tissue. In this work, nano-titania (nano-TiO2) was dispersed into the ceramic-matrix to enhance the mechanical properties of porous akermanite scaffolds fabricated with selective laser sintering (SLS). The fabrication process, microstructure and mechanical and biological properties were investigated. The results showed that the nano-TiO2 particles were dispersed both within the akermanite grains and along the grain boundaries. The grain size of akermanite was refined due to the pinning effect of the nano-TiO2 particles on the grain boundaries. The crack deflection around the nano-TiO2 particles was observed due to the mismatch of thermal expansion coefficients between TiO2 and akermanite. The fracture mode changed from intergranular fracture to more and more transgranular fracture as the concentration of nano-TiO2 increased from 0 to 5 wt%. Meanwhile, the fracture toughness, Vickers hardness, compressive strength and stiffness were significantly increased with increasing nano-TiO2. The improvement of mechanical properties was due to the grain size refinement, the crack deflection, as well as the fracture mode transition. The bone like apatite was formed on the scaffolds in simulated body fluid (SBF). The human osteoblast-like MG-63 cells (MG-63 cells) adhered and grew well on the scaffolds. The porous akermanite scaffolds reinforced with nano-TiO2 have considerable potential for application in bone tissue engineering.
机译:钙长石具有优异的生物相容性和生物降解性,而低的断裂韧性和脆性限制了其在骨组织的承重部位的使用。在这项工作中,将纳米二氧化钛(nano-TiO2)分散到陶瓷基体中,以增强通过选择性激光烧结(SLS)制成的多孔钙钛矿支架的机械性能。研究了其制备工艺,显微组织以及力学和生物学性能。结果表明,纳米TiO2颗粒既分散在钙钛矿晶粒内,又沿着晶界分散。由于纳米TiO2颗粒在晶界上的钉扎作用,钙钛矿的晶粒尺寸得以细化。由于TiO2和钙钛矿之间的热膨胀系数不匹配,观察到了纳米TiO2颗粒周围的裂纹偏转。随着纳米TiO 2的浓度从0wt%增加到5wt%,断裂模式从晶间断裂变为越来越多的经晶断裂。同时,随着纳米TiO2含量的增加,断裂韧性,维氏硬度,抗压强度和刚度均显着提高。机械性能的改善归因于晶粒尺寸的细化,裂纹变形以及断裂模式的转变。在模拟体液(SBF)中的支架上形成了类似磷灰石的骨头。人成骨样MG-63细胞(MG-63细胞)在支架上粘附并生长良好。纳米TiO2增强的多孔钙钛矿支架在骨组织工程中具有巨大的应用潜力。

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