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Digital Light Processing of Freeze-cast Ceramic Layers for Macroporous Calcium Phosphate Scaffolds with Tailored Microporous Frameworks

机译:具有量身定制的微孔骨架的大孔磷酸钙支架的冻结浇铸陶瓷层的数字光处理

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摘要

The objective of the present study is to demonstrate the versatility of the digital light processing (DLP) technique particularly when using a freeze-cast ceramic layer as the feedstock, which can manufacture porous calcium phosphate (CaP) scaffolds with arbitrarily designed macroporous structures with tailored microporous frameworks specially designed for bone scaffold applications. For this goal, we employed camphene-camphor as the freezing vehicle and porogen for the preparation of photocurable CaP suspensions containing diurethane dimethacrylate (UDMA) monomers. After freeze-casting, the CaP suspensions could be solidified at controlled temperatures (~33–38 °C) and then be photopolymerized by DLP. All produced CaP scaffolds fairly resembled the designed macroporous structures (the gyroid structure with two interpenetrating macropore networks). In addition, numerous micropores were created in the CaP filaments, while the microporosity increased with increasing the camphene-camphor amount from 40 vol % to 60 vol %. As a consequence, compressive strength and modulus of hierarchically porous CaP scaffolds decreased due to an increase in overall porosity. However, reasonable mechanical properties could be obtained at high porosities owing to the CaP frameworks constructed in a periodic manner. In addition, excellent water penetration capability, biocompatibility, and apatite-forming ability were obtained, which were attributed to the microporous CaP frameworks with good pore interconnectivity and large surface area.
机译:本研究的目的是证明数字光处理(DLP)技术的多功能性,尤其是在使用冷冻铸造陶瓷层作为原料时,该技术可以制造具有任意设计的大孔结构和量身定制的多孔磷酸钙(CaP)支架专为骨骼支架应用设计的微孔框架。为了实现这一目标,我们采用了樟脑樟脑作为冷冻载体和致孔剂,以制备含有二氨基甲酸酯二甲基丙烯酸酯(UDMA)单体的光固化CaP悬浮液。冷冻浇铸后,CaP悬浮液可以在控制温度(〜33–38°C)下固化,然后通过DLP光聚合。所有产生的CaP支架都非常类似于设计的大孔结构(具有两个相互渗透的大孔网络的螺旋状结构)。另外,在CaP细丝中产生了许多微孔,而微孔率随着樟脑樟脑樟油量从40体积%增加到60体积%而增加。结果,由于整体孔隙率的增加,分层多孔CaP支架的抗压强度和模量降低。然而,由于以周期性方式构造的CaP骨架,在高孔隙率下可以获得合理的机械性能。此外,获得了优异的水渗透能力,生物相容性和磷灰石形成能力,这归因于具有良好的孔连通性和大表面积的微孔CaP骨架。

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