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首页> 外文期刊>RSC Advances >Cotton-like micro- and nanoscale poly(lactic acid) nonwoven fibers fabricated by centrifugal melt-spinning for tissue engineering
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Cotton-like micro- and nanoscale poly(lactic acid) nonwoven fibers fabricated by centrifugal melt-spinning for tissue engineering

机译:离心熔融纺丝技术制备的棉状微米级和纳米级聚乳酸无纺布

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Biodegradable materials in the form of nonwoven fibers have attracted increasing attention for tissue engineering applications because they offer large surface areas and interconnected networks. In this study, cotton-like nonwoven poly(lactic acid) (PLA) fibers were successfully fabricated by centrifugal melt-spinning. The effects of centrifugal speed and secondary melt-spinning processing on the morphology, mechanical properties, and cell compatibility of the fibers were investigated. Scanning electron microscopy, differential scanning calorimetry, and Fourier-transform infrared spectroscopy (FTIR), as well as cell culturing of MC3T3-E1 were used in this study. The results showed that centrifugal speeds from 350 to 1500 rpm satisfied the needs for fiber formation. The PLA fibers we prepared had three-dimensional structures with extensive diameter distribution from the nanoscale to several tens of micrometers, large pore sizes, and high porosities, significantly different from fibers produced by electrospinning. The fiber diameters and mechanical properties could be manipulated by controlling the centrifugal speed. The finest fibers were generated at 900 rpm with average diameters of 3.47 ± 3.48 μm. The fibers created by centrifugal melt-spinning exhibited lower cytotoxicity and higher cell proliferation than those obtained by electrospinning.
机译:非织造纤维形式的可生物降解材料由于其提供大的表面积和相互连接的网络,因此在组织工程应用中受到越来越多的关注。在这项研究中,通过离心熔融纺丝成功地制造了棉状非织造聚乳酸(PLA)纤维。研究了离心速度和二次熔纺工艺对纤维形态,力学性能和细胞相容性的影响。本研究使用扫描电子显微镜,差示扫描量热法和傅立叶变换红外光谱(FTIR)以及细胞培养MC3T3-E1。结果表明,从350到1500 rpm的离心速度可以满足纤维形成的需求。我们制备的PLA纤维具有三维结构,其直径分布范围从纳米级到数十微米不等,具有较大的孔径和高孔隙率,与电纺丝纤维明显不同。纤维直径和机械性能可以通过控制离心速度来控制。最好的纤维以900 rpm的速度产生,平均直径为3.47±3.48μm。与通过电纺丝获得的纤维相比,通过离心熔纺得到的纤维表现出更低的细胞毒性和更高的细胞增殖。

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