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Preparation of interconnected poly(u3b5-caprolactone) porous scaffolds by a combination of polymer and salt particulate leaching

机译:聚合物和盐颗粒浸出相结合制备互连的聚( u3b5-己内酯)多孔支架

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摘要

This paper examines a new technique for the preparation of porous scaffolds by combining selective polymer leaching in a co-continuous blend and salt particulate leaching. In the first step of this technique, a co-continuous blend of two biodegradable polymers, poly(u3b5-caprolactone) (PCL) and polyethylene oxide (PEO), and a certain amount of sodium chloride salt particles are melt blended using a twin screw extruder. Subsequently, extraction of the continuous PEO and mineral salts using water as a selective solvent yields a highly porous PCL scaffold with fully interconnected pores. Since, the salt particles and the co-continuous polymer blend morphology lead to very different pore sizes, a particular feature of this technique is the creation of a bimodal pore size distribution. Scanning electron microscopy, mercury intrusion porosimetry and laser diffraction particle size analysis were carried out to characterize the pore morphology. The prepared scaffolds have relatively homogeneous pore structure throughout the matrix and the porosity can be controlled between 75% and about 88% by altering the initial volume fraction of salt particles and to a lesser extent by changing the PCL/PEO composition ratio. Compared to the conventional salt leaching technique and to its different variants, the proposed process allows a better interconnection between the large pores left by the salt leaching and a fully interconnected porous structure resulting from the selective polymer leaching. The average compressive modulus of the different porous scaffolds was found to decrease from 5.2 MPa to about 1 MPa with increasing porosity, according to a poweru2013law relationship. Since, the blending and molding of the scaffold (prior to leaching) can be made using conventional polymer processing equipment, this process seems very promising for a large scale production of porous scaffold of many sizes and in an economic way.
机译:本文研究了一种通过结合共连续混合物中的选择性聚合物浸出和盐颗粒浸出来制备多孔支架的新技术。在该技术的第一步中,使用双晶将两种可生物降解的聚合物,聚( u3b5-己内酯)(PCL)和聚环氧乙烷(PEO),和一定量的氯化钠盐颗粒共连续混合。螺杆挤出机。随后,使用水作为选择性溶剂提取连续的PEO和无机盐,得到具有完全互连的孔的高度多孔的PCL支架。由于盐颗粒和共连续聚合物共混物的形态会导致非常不同的孔径,因此该技术的一个特殊功能是创建了双峰孔径分布。进行扫描电子显微镜,压汞法和激光衍射粒度分析以表征孔的形态。所制备的支架在整个基质中具有相对均匀的孔结构,并且可以通过改变盐颗粒的初始体积分数将孔隙率控制在75%至约88%之间,并且通过改变PCL / PEO组成比可以将孔隙率控制在较小程度上。与常规的盐浸提技术及其不同的变体相比,所提出的方法可以使盐浸提所留下的大孔与选择性聚合物浸提所产生的完全互连的多孔结构之间具有更好的相互联系。根据幂函数关系,发现随着孔隙率的增加,不同多孔支架的平均压缩模量从5.2 MPa降低至约1 MPa。由于可以使用常规的聚合物加工设备进行骨架的共混和模制(在浸出之前),因此该方法对于大规模生产多种尺寸且经济的多孔骨架似乎非常有前途。

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