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Coextrusion-Based 3D Plotting of Ceramic Pastes for Porous Calcium Phosphate Scaffolds Comprised of Hollow Filaments

机译:基于共挤出的多孔丝磷酸钙支架陶瓷浆料的3D绘图

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摘要

This paper demonstrates the utility of coextrusion-based 3D plotting of ceramic pastes (CoEx-3DP) as a new type of additive manufacturing (AM) technique, which can produce porous calcium phosphate (CaP) ceramic scaffolds comprised of hollow CaP filaments. In this technique, green filaments with a controlled core/shell structure can be produced by coextruding an initial feedrod, comprised of the carbon black (CB) core and CaP shell, through a fine nozzle in an acetone bath and then deposited in a controlled manner according to predetermined paths. In addition, channels in CaP filaments can be created through the removal of the CB cores during heat-treatment. Produced CaP scaffolds had two different types of pores with well-defined geometries: three-dimensionally interconnected pores (~360 × 230 μm2 in sizes) and channels (>100 μm in diameter) in hollow CaP filaments. The porous scaffolds showed high compressive strengths of ~12.3 ± 2.2 MPa at a high porosity of ~73 vol % when compressed parallel to the direction of the hollow CaP filaments. In addition, the mechanical properties of porous CaP scaffolds could be tailored by adjusting their porosity, for example, compressive strengths of 4.8 ± 1.1 MPa at a porosity of ~82 vol %. The porous CaP scaffold showed good biocompatibility, which was assessed by in vitro cell tests, where several the cells adhered to and spread actively with the outer and inner surfaces of the hollow CaP filaments.
机译:本文演示了基于陶瓷浆料共挤压的3D绘图(CoEx-3DP)作为一种新型的增材制造(AM)技术的实用性,该技术可以生产由空心CaP细丝组成的多孔磷酸钙(CaP)陶瓷支架。在该技术中,可以通过在丙酮浴中通过细喷嘴共挤出由炭黑(CB)芯和CaP壳组成的初始进料棒来生产具有受控的芯/壳结构的生丝,然后将其以受控方式沉积根据预定的路径。此外,可以通过在热处理过程中去除CB芯线来创建CaP丝中的通道。产生的CaP支架具有两种不同类型的具有明确定义的几何形状的孔:三维互连的孔(尺寸约为360×230μm 2 )和中空CaP丝的通道(直径大于100μm) 。当平行于中空CaP细丝的方向压缩时,多孔支架在〜73vol%的高孔隙率下显示〜12.3±2.2MPa的高压缩强度。另外,多孔CaP支架的机械性能可以通过调节其孔隙率来调整,例如,在孔隙率为〜82vol%时的抗压强度为4.8±1.1MPa。多孔CaP支架显示出良好的生物相容性,这通过体外细胞测试进行评估,其中几个细胞附着在空心CaP细丝的内表面并与之活跃地扩散。

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