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Size Also Matters in Biodegradable Composite Microfiber Reinforced by Chitosan Nanofibers

机译:壳聚糖纳米纤维增强的可生物降解的复合材料微纤维的大小也是如此

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Pioneer works on nanocomposites were focused in carbon nanofibers or nanotubes dispersed in epoxy matrix, a viscous liquid facilitating the compounding stage. The interest in developing new composites aimed for biomedical applications led us to design new nanocomposites based in biodegradable polymers with demonstrated biological performance. We report herein the development of micro-nano composites by extruding poly (bury lene succinate) (PBS) microfibers with two different diameters, 200 and 500 μm, reinforced with electrospun chitosan nanofibers. Analysis of the microfibers showed high levels of alignment of the reinforcing phase and excellent distribution of the nanofibers in the composite. Its geometry facilitates the development of orthotropy, maximizing the reinforcement in the axial fiber main axis. The biodegradable microfiber composites show an outstanding improvement of mechanical properties and of the kinetics of biodegradation, with very small fractions (0.05 and 0.1 wt.%) of electrospun chitosan nanofibers reinforcement. The high surface area-to-volume ratio of electrospun nanofibers combined with the increased water uptake capability of chitosan justify the accelerated kinetics of biodegradation of the composite as compared with the unfilled synthetic polymer.
机译:纳米复合材料上的先驱效果聚焦在分散在环氧基质中的碳纳米纤维或纳米管中,促进复合阶段的粘性液体。开发旨在为生物医学应用的新复合材料的兴趣导致我们基于可生物降解的聚合物设计新的纳米复合材料,具有明显的生物学性能。我们在本文中报告了微纳米复合材料通过用两种不同的直径,200和500μm挤出聚(埋的Lene琥珀酸盐)(PBS)微纤维,用Electrom up壳聚糖纳米纤维增强。微纤维的分析显示了增强相的高水平对准和复合材料中纳米纤维的优异分布。其几何形状有助于开发正向性,最大化轴向纤维主轴的加强件。可生物降解的微纤维复合材料显示出突出的机械性能和生物降解动力学的改善,具有非常小的级分(0.05和0.1重量%)Electrowun壳聚糖纳米纤维增强。电纺纳米纤维的高表面积达体积比与壳聚糖的增加的水吸收能力相结合,使得与未填充的合成聚合物相比,将复合材料的生物降解的加速动力学致力于加速动力学。

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