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Characterization of Fabricated Three Dimensional Scaffolds of Bioceramic-Polymer Composite via Microstereolithography Technique

机译:微溶解技术的表征杀生物蛋白聚合物复合物的制造三维支架

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Microstereolithography is a method used for rapid prototyping of polymeric and ceramic components. This technique converts a computer-aided design (CAD) to a three dimensional (3D) model, and enables layer per layer fabrication curing a liquid resin with UV-light or laser source. The aim of this project was to formulate photocurable polymer reinforced with synthesized calcium pyrophosphate (CPP), and to fabricate a 3D scaffolds with optimum mechanical properties for specific tissue engineering applications. The photocurable ceramic suspension was prepared with acrylate polyester, multifunctional acrylate monomer with the addition of 50-70wt% of CPP, photoinitiators and photoinhibitors. The 3D structure of disc (5 mm height x 4 mm diameter) was successfully fabricated using Envisiontec Perfactory3?. They were then sintered at high temperature for polymer removal, to obtain a ceramic of the desired porosity. The density increased to more than 35% and the dimensional shrinkage after sintering were 33%. The discs were then subjected compressive measurement, biodegradation and bioactivity test. Morphology and CPP content of the sintered polymer was investigated with SEM and XRD, respectively. The addition of CPP coupled with high temperature sintering, had a significant effect on the compressive strength exhibited by the bioceramic. The values are in the range of cancellous bone (2-4 MPa). In biodegradation and bioactivity test, the synthesized CPP induced the formation of apatite layer and its nucleation onto the composite surface.
机译:MicrostEropore刻是一种用于快速原型的聚合物和陶瓷组分的方法。该技术将计算机辅助设计(CAD)转换为三维(3D)模型,并且通过UV光或激光源固化液体树脂的每层制造层的层。该项目的目的是配制用合成的焦磷酸钙(CPP)加固的可光固化聚合物,并制造用于特定组织工程应用的最佳机械性能的3D支架。用丙烯酸酯聚酯,多官能丙烯酸酯单体制备光固化的陶瓷悬浮液,加入50-70wt%的CPP,光引发剂和光脉络。使用EnvisionTec Perfactory3成功制造盘的3D结构(5mm高度x 4 mm直径)。然后将它们烧结在高温下进行聚合物去除,得到所需孔隙率的陶瓷。密度增加到35%以上,烧结后的尺寸收缩为33%。然后使光盘进行压缩测量,生物降解和生物活性测试。用SEM和XRD研究烧结聚合物的形态学和CPP含量。添加CPP与高温烧结相结合,对生物陶瓷呈现的抗压强度具有显着影响。值在松质骨(2-4MPa)范围内。在生物降解和生物活性试验中,合成的CPP诱导磷灰石层的形成及其成核在复合表面上。

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