Ahn Min-Kyung, Moon Young-Wook, Maeng Woo-Youl, Koh Young-Hag, Kim Hyoun-Ee
Department of Biomedical Engineering, Korea University, Seoul 136-701, Korea.
Department of Materials Science and Engineering, Seoul National University, Seoul 151-742, Korea.
Materials (Basel). 2017 Jun 28;10(7):719. doi: 10.3390/ma10070719.
This study proposes a new type of calcium phosphate (CaP) scaffolds with a continuously gradient macro/microporous structure using the ceramic/camphene-based 3D extrusion process. Green filaments with a continuously gradient core/shell structure were successfully produced by extruding a bilayered feedrod comprised of a CaP/camphene mixture lower part and a pure camphene upper part. The extruded filaments were then deposited in a controlled manner to construct triangular prisms, followed by the assembly process for the production of CaP scaffolds with a gradient core/shell structure. In addition, a gradient microporous structure was created by heat-treating the green body at 43 °C to induce the overgrowth of camphene dendrites in the CaP/camphene walls. The produced CaP scaffold showed a highly macroporous structure within its inner core, where the size of macrochannels increased gradually with an increase in the distance from the outer shell, while relatively larger micropores were created in the outer shell.
本研究采用基于陶瓷/莰烯的3D挤压工艺,提出了一种具有连续梯度宏观/微观多孔结构的新型磷酸钙(CaP)支架。通过挤压由CaP/莰烯混合物下部和纯莰烯上部组成的双层进料棒,成功制备了具有连续梯度核/壳结构的绿色长丝。然后将挤出的长丝以可控方式沉积以构建三棱柱,随后进行组装工艺以生产具有梯度核/壳结构的CaP支架。此外,通过在43℃下对生坯进行热处理,诱导莰烯树枝晶在CaP/莰烯壁中过度生长,从而形成梯度微孔结构。所制备的CaP支架在内核中呈现出高度大孔结构,其中大通道的尺寸随着与外壳距离的增加而逐渐增大,而在外壳中形成了相对较大的微孔。