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Carbon Nanotube Coating on 3-D Nanofibrous PLLA Tissue Engineering Scaffolds by Electrophoretic Deposition

机译:用电泳沉积在3-D纳米纤维PLLA组织工程支架上碳纳米管涂层

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A uniform CNTs coating on highly porous nanofibrous and biodegradable PLLA scaffolds, intended for tissue engineering, by the electrophoretic deposition (EPD) technique. The morphologies before and after EPD of CNT coating were investigated by SEM. The mechanical properties were also measured and the EPD mechanism was discussed. The negatively charged CNTs enforced by the electric field moved towards the anode through the gaps of PLLA nanofibers of the scaffolds, where they interwined with PLLA nanofibers and form CNT coating. The nanocomposite scaffolds after CNT coating still remain interconnectivity as high as the control PLLA scaffolds. We finally got a scaffold that aimed to simulate different scale levels for tissue engineering purpose. The different scales from macro-scale (10μm-425μm), subcellular scale structures (0.1-10 μm) to nanostructures (20-100 nm) are favor to control cellular environment and cell-matrix interactions. The CNT coating can greatly improve the compressive modulus of the 3D PLLA scaffolds.
机译:通过电泳沉积(EPD)技术,用于组织工程的高度多孔纳米纤维和生物降解PLLA支架上的均匀CNT涂层。通过SEM研究了CNT涂层EPD之前和之后的形态。还测量机械性能并讨论了EPD机制。通过支架的PLLA纳米纤维的间隙,电场强制的带负电的CNT通过支架的PLLA纳米纤维的间隙移动,在那里它们与PLLA纳米纤维相连并形成CNT涂层。 CNT涂层后的纳米复合支架仍然保持与对照PLLA支架一样高的互连性。我们终于获得了脚手架,旨在模拟组织工程目的的不同尺度水平。来自宏观(10μm-425μm),亚细胞刻度结构(0.1-10μm)至纳米结构(20-100nm)的不同刻度有利于控制细胞环境和细胞基质相互作用。 CNT涂层可以大大改善3D PLLA支架的压缩模量。

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