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首页> 外文期刊>Acta biomaterialia >Direct write assembly of calcium phosphate scaffolds using a water-based hydrogel.
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Direct write assembly of calcium phosphate scaffolds using a water-based hydrogel.

机译:使用水性水凝胶直接书写组装磷酸钙支架。

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摘要

The development of materials to support bone regeneration requires flexible fabrication technologies able to tailor chemistry and architecture for specific applications. In this work we describe the preparation of ceramic-based inks for robotic-assisted deposition (robocasting) using Pluronic F-127 solutions. This approach allows the preparation of pseudoplastic inks with solid contents ranging between 30 and 50 vol.%, enabling them to flow through a narrow printing nozzle while supporting the weight of the printed structure. Ink formulation does not require manipulation of the pH or the use of highly volatile organic components. Therefore, the approach can be used to prepare materials with a wide range of compositions, and here we use it to build hydroxyapatite (HA), beta-tricalcium phosphate (beta-TCP) and biphasic (HA/beta-TCP) structures. The flow of the inks is controlled by the Pluronic content and the particle size distribution of the ceramic powders. The use of wide size distributions favors flow through the narrow printing nozzles and we have been able to use printing nozzles as narrow as 100 microm in diameter, applying relatively low printing pressures. The microporosity of the printed lines increases with increasing Pluronic content and lower sintering temperatures. Microporosity can play a key role in determining the biological response to the materials, but it also affects the strength of the structure.
机译:开发支持骨骼再生的材料需要灵活的制造技术,这些技术必须能够针对特定应用定制化学和结构。在这项工作中,我们描述了使用Pluronic F-127解决方案制备用于机器人辅助沉积(机器人铸造)的陶瓷基油墨。这种方法可以制备固体含量在30%至50%(体积)之间的假塑性油墨,使它们能够流经狭窄的喷嘴,同时支撑印刷结构的重量。油墨配方不需要调节pH值或使用高挥发性有机成分。因此,该方法可用于制备具有广泛组成的材料,在这里我们使用它来构建羟基磷灰石(HA),β-磷酸三钙(β-TCP)和双相(HA /β-TCP)结构。油墨的流动受Pluronic含量和陶瓷粉末的粒度分布控制。宽尺寸分布的使用有利于流经狭窄的打印喷嘴,并且我们已经能够使用直径相对较小的100微米的打印喷嘴,并施加相对较低的打印压力。印刷线的微孔度随着Pluronic含量的增加和较低的烧结温度而增加。微孔可在确定对材料的生物反应中起关键作用,但也会影响结构的强度。

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