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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Post-processing of polymer foam tissue scaffolds with high power ultrasound: A route to increased pore interconnectivity, pore size and fluid transport
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Post-processing of polymer foam tissue scaffolds with high power ultrasound: A route to increased pore interconnectivity, pore size and fluid transport

机译:高功率超声对聚合物泡沫组织支架进行后处理:增加孔的互连性,孔径和流体传输的途径

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摘要

The aimof this work is to demonstrate that the structural and fluidic properties of polymer foamtissue scaffolds, post-fabrication but prior to the introduction of cells, can be engineered via exposure to high power ultrasound. Our analysis is supported by measurements of fluid uptake during insonification and imaging of the scaffold microstructure via X-ray computed tomography, scanning electron microscopy and acoustic microscopy. The ultrasonic treatment is performed with a frequency of 30 kHz, average intensities up to 80,000 Wm~(-2) and exposure times up to 20 h. The treatment is found to increase the mean pore size by over 10%. More striking is the improvement in fluid uptake: for scaffolds with only 40% water uptake via standard immersion techniques, we can routinely achieve full saturation of the scaffold over approximately one hour of exposure. These desirable modifications occur with negligible loss of scaffold integrity and mass, and are optimized when the ultrasound treatment is coupled to a pre-wetting stage with ethanol. Our findings suggest that high power ultrasound is highly targeted towards flow obstructions in the scaffold architecture, thereby providing an efficient means to promote pore interconnectivity and fluid transport in thick foam tissue scaffolds.
机译:这项工作的目的是证明聚合物泡沫组织支架的结构和流体特性,可以在制造后但在引入细胞之前通过暴露于高功率超声来进行工程改造。通过X射线计算机断层扫描,扫描电子显微镜和声波显微镜对支架微观结构的声化和成像过程中的液体吸收进行测量,从而为我们的分析提供了支持。超声处理的频率为30 kHz,平均强度高达80,000 Wm〜(-2),暴露时间长达20 h。发现该处理使平均孔径增加了10%以上。引人注目的是流体吸收的改善:对于通过标准浸没技术仅吸收40%水分的脚手架,我们通常可以在暴露约一小时后实现脚手架的完全饱和。这些期望的修饰发生时,支架完整性和质量的损失可忽略不计,并且在将超声处理与乙醇预润湿阶段结合使用时进行了优化。我们的发现表明,高功率超声高度针对支架结构中的流动障碍,从而提供了一种有效的手段来促进厚泡沫组织支架中的孔连通性和流体运输。

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