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Facile production of nanocomposites of carbon nanotubes and polycaprolactone with high aspect ratios with potential applications in drug delivery

机译:轻松生产具有高长径比的碳纳米管和聚己内酯的纳米复合材料,并潜在地应用于药物输送

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The geometries and surface properties of nanocarriers greatly influence the interaction between nanomaterials and living cells. In this work we combine multiwalled carbon nanotubes (CNTs) with poly-ε-caprolactone (PCL) to produce non-spherical nanocomposites with high aspect ratios by using a facile emulsion solvent evaporation method. Particles were characterised by dynamic light scattering (DLS), scanning electron microscopy (SEM), atomic force microscopy (AFM) and asymmetric flow field flow fractionation (AF4). Different sizes and morphologies of nanoparticles were produced depending on the concentration of the sodium dodecyl sulphate (SDS), CNTs and PCL. Rod-like PCL-CNT nanostructures with low polydispersity were obtained with 1.5 mg mL ~(?1) of SDS, 0.9 mg mL ~(?1) of CNTs and 10 mg mL ~(?1) PCL. AFM analysis revealed that the PCL and PCL-CNT nanocomposite had comparatively similar moduli of 770 and 560 MPa respectively, indicating that all the CNTs have been coated with at least 2 nm of PCL. Thermogravimetric analysis of the PCL-CNT nanocomposite indicated that they contained 9.6% CNTs by mass. The asymmetric flow field flow fractionation of the samples revealed that the PCL-CNT had larger hydrodynamic diameters than PCL alone. Finally, the drug loading properties of the nanocomposites were assessed using docetaxel as the active substance. The nanocomposites showed comparable entrapment efficiencies of docetaxel (89%) to the CNTs alone (95%) and the PCL nanoparticles alone (81%). This is a facile method for obtaining non-spherical nanocomposites that combines the properties of PCL and CNTs such as the high aspect ratio, modulus. The high drug entrapment efficiency of these nanocomposites may have promising applications in drug delivery.
机译:纳米载体的几何形状和表面性质极大地影响了纳米材料与活细胞之间的相互作用。在这项工作中,我们将多壁碳纳米管(CNTs)与聚ε-己内酯(PCL)结合在一起,通过使用简便的乳液溶剂蒸发方法生产出具有高长径比的非球形纳米复合材料。通过动态光散射(DLS),扫描电子显微镜(SEM),原子力显微镜(AFM)和不对称流场流动分馏(AF4)对颗粒进行表征。根据十二烷基硫酸钠(SDS),CNT和PCL的浓度,可以生产出不同尺寸和形态的纳米颗粒。用1.5 mg mL〜(?1)SDS,0.9 mg mL〜(?1)CNT和10 mg mL〜(?1)PCL获得具有低多分散性的棒状PCL-CNT纳米结构。原子力显微镜分析表明,PCL和PCL-CNT纳米复合材料的模量分别相似,分别为770和560 MPa,表明所有CNT都被至少2 nm的PCL覆盖。 PCL-CNT纳米复合材料的热重分析表明,它们包含9.6%的CNT。样品的非对称流场流动分级显示,PCL-CNT比单独的PCL具有更大的流体动力学直径。最后,使用多西紫杉醇作为活性物质评估了纳米复合材料的载药性能。纳米复合材料显示出多西紫杉醇(89%)与单独的CNT(95%)和单独的PCL纳米颗粒(81%)相当的包封率。这是一种获得非球形纳米复合材料的简便方法,该方法结合了PCL和CNT的特性,例如高长宽比,模量。这些纳米复合材料的高药物截留效率可能在药物输送中具有广阔的应用前景。

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