首页> 外文期刊>Journal of nanomaterials >Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co 3 Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material
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Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co 3 Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material

机译:碳酸镁磷灰石(Mg-CO 3 AP)复合材料的合成,结构表征,降解速率和生物相容性及其作为可生物降解的矫形植入基材的潜力

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Suitable biomechanical properties with a degradation rate parallel to normal bone healing time are vital characteristics for biodegradable implant material in orthopaedics. Magnesium (Mg) is a natural micronutrient as well as biodegradable metal with biomechanical characteristics close to that of the human bone, while carbonate apatite (CO 3 Ap) is a biological apatite with good osteoconductivity which allows bone healing without forming fibrotic tissue. We fabricated a Mg-CO 3 Ap composite with various content ratios by powder metallurgy, various milling times (3, 5, and 7 hours) at 200?RPM, warm compaction at 300°C and pressure of 265?MPa, sintering at 550°C, holding time of 1 hour, heating rate of 5°C/minutes, and room atmosphere cooling. Specimens were successfully created and had a density comparable to that of the human bone (1.95-2.13?g/cm 3 ). Good biocompatibility was found on Mg-10% CO 3 Ap composite (66.67% of viable cells). Nevertheless, its biomechanical properties and corrosion resistance were inferior to the human bone. Additionally, the materials of the composites make the surrounding environment alkaline. Interparticle consolidation and grain size were dissatisfactory due to microstructural pores presumably formed by the Mg(OH) 2 layer and oxidation process during sintering. However, alkaline condition caused by the material corrosion by-product might be beneficial for bone healing and wound healing process. Modifications on fabrication parameters are needed to improve interparticle consolidation, refine grain size, improve biomechanical strength, reduce corrosion products, and improve the degradation rate.
机译:具有与正常骨愈合时间平行的降解速率的合适的生物力学性质是骨科可生物降解的植入物材料的重要特征。镁(Mg)是天然的微量营养素以及可生物学的金属,具有靠近人骨的生物力学特性,而碳酸盐磷灰石(CO 3 AP)是一种具有良好骨导电性的生物磷灰石,其允许骨愈合而不形成纤维化组织。我们通过粉末冶金,各种铣削时间(3,5和7小时)制造了Mg-Co 3 AP复合材料,在200℃下,在300°C和265℃的压力下温度压实,烧结为550 °C,保持时间为1小时,加热速率为5°C /分钟,以及室内大气冷却。成功地产生标本并具有与人骨(1.95-2.13Ω·克/厘米3)相当的密度。在Mg-10%CO 3 AP复合物(66.67%的活细胞)上发现了良好的生物相容性。然而,其生物力学性能和耐腐蚀性差不等。另外,复合材料的材料使周围的环境碱性。由于Mg(OH)2层和烧结期间的氧化过程可能由Mg(OH)2层和氧化过程可能是显微结构的孔,颗粒状固结和晶粒尺寸是不敏感性的。然而,由材料腐蚀副产物引起的碱性病症可能对骨愈合和伤口愈合过程有益。需要改进制造参数,以改善颗粒间固结,细粒尺寸,提高生物力学强度,减少腐蚀产物,提高降解率。

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