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首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Preparation of Interconnected Highly Porous Polymeric Structures by a Replication and Freeze-Drying Process
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Preparation of Interconnected Highly Porous Polymeric Structures by a Replication and Freeze-Drying Process

机译:通过复制和冷冻干燥工艺制备相互连接的高度多孔聚合物结构

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Three-dimensional degradable porous polymeric structures with high porosities (93-98 percent) and well-interconnected pore networks have been prepared by freeze-drying polymer solutions in the presence of a leachable template followed by leaching of the template. Templates of the pore network were prepared by fusing sugar or salt particles to form a well-connected structure. The interstices of the template were then filled with a polymer solution (5-15 percent w/v) in 1,4-dioxane, followed by freeze-drying of the solvent. Subsequent leaching of the sugar template ensures the connectivity of the pore network. The scaffold architecture consists of relatively large interconnected pores modeled after the template and smaller pores resulting from the freeze-drying process. The total porosity of the resultant porous structures is determined by the interstitial space of the leachable template and by the polymer concentration in the freeze-drying solution. The freezing temperature also has an effect on the final morphology of the porous structures. Compared with freeze-drying and combination of freeze-drying/particulate leaching techniques, this method facilitates higher interconnectivity of the scaffolds. Porous structures have been prepared from several relevant polymers in the biomedical and tissue-engineering field: poly(D,L-lactide) (PDLLA), 1000PEOT70PBT30, a segmented poly(ether ester) based on polyethylene oxide and polybutylene terephthalate, and poly(implied by-caprolactone) (PCL). The mechanical properties of the porous structures prepared by this technique depend on the nature of the polymer, porosity, and the freezing temperature. With porosities in the range of 95-97 percent, the compression moduli of scaffolds prepared from the different polymers could be varied between 13.0 and 301.5 kPa.
机译:通过在可浸出模板的存在下冻干聚合物溶液,然后浸出模板,已经制备了具有高孔隙率(93-98%)和良好互连的孔网络的三维可降解多孔聚合物结构。通过融合糖或盐颗粒以形成良好连接的结构来制备孔网络的模板。然后将模板的空隙填充在1,4-二恶烷中的聚合物溶液(5-15%w / v),然后将溶剂冷冻干燥。糖模板的后续浸出确保了孔网络的连通性。支架结构由按照模板建模的相对较大的互连孔和由冷冻干燥过程产生的较小孔组成。所得多孔结构的总孔隙率由可浸出模板的间隙和冷冻干燥溶液中的聚合物浓度决定。冻结温度也影响多孔结构的最终形态。与冷冻干燥和冷冻干燥/颗粒浸出技术的组合相比,该方法促进了支架的更高的互连性。已从生物医学和组织工程领域中的几种相关聚合物制备了多孔结构:聚(D,L-丙交酯)(PDLLA),1000PEOT70PBT30,基于聚环氧乙烷和聚对苯二甲酸丁二醇酯的分段聚(醚酯)以及聚(暗示己内酯)(PCL)。通过这种技术制备的多孔结构的机械性能取决于聚合物的性质,孔隙率和凝固温度。孔隙率在95-97%范围内时,由不同聚合物制备的支架的压缩模量可在13.0至301.5 kPa之间变化。

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