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首页> 外文期刊>Polymers for advanced technologies >An investigation on polycaprolactone/chitosan/Fe3O4 nanofibrous composite used for hyperthermia
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An investigation on polycaprolactone/chitosan/Fe3O4 nanofibrous composite used for hyperthermia

机译:用于热疗的聚己内酯/壳聚糖/壳聚糖/ Fe3O4纳米纤维复合材料研究

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摘要

Hyperthermia is considered as an effective supplementary cancer treatment. However, the uneven temperature distribution is the major challenge in hyperthermia. Nanotechnology could solve this problem by applying magnetic nanoparticles directly or in nanofibers as implants. Low solubility, poor cancer targeting, and leakage are limitations of free magnetic nanoparticles. In this work, Fe3O4 nanoparticles were loaded into polycaprolactone/chitosan blended nanofibers in various contents. Magnetic, chemical, physical, and morphology of the derived nanofibrous composites were then studied. The results showed the magnetic properties of the nanocomposite had low coercivity, which was close to superparamagnetic particles. Chemical analysis showed that components had no interaction with each other. Nevertheless, Fe3O4 was slightly transformed to other iron oxides. However, the magnetic analysis showed this transformation had no significant effect on final magnetic content of the nanofibers. The results of X-ray diffraction (XRD) (19.5 nm), transmittance electron microscopy (TEM) (21.6 nm), and vibration sample magnetometer (VSM) (17 nm) suggested that the magnetic nanoparticles were single domain. Thermal analysis results showed that 7% Fe3O4 nanofibers had more heat increase as oppose to other nanofibrous composites in the alternative magnetic field (AMF). Nonetheless, the heat performance of 3% Fe3O4 nanofibers was more than others according to its specific power absorption (SPA). Therefore, due to the importance of using nanoparticles in the least possible content, this method can be used as a postsurgical treatment by applying these nanofibrous composites as implants on the tumor site. Moreover, these nanofiber composites could carry anticancer drugs, which are applied as a multi-mode treatment system.
机译:热疗被认为是一种有效的补充癌症治疗。然而,不平坦的温度分布是热疗中的主要挑战。纳米技术可以通过直接或以纳米纤维作为植入物施加磁性纳米粒子来解决这个问题。低溶解度,癌症靶向差,泄漏是游离磁性纳米颗粒的限制。在这项工作中,将Fe3O4纳米颗粒以各种内容物装入聚己内酯/壳聚糖混合纳米纤维中。然后研究衍生的纳米纤维复合材料的磁,化学,物理和形态。结果表明纳米复合材料的磁性具有低矫顽力,其靠近超顺磁性颗粒。化学分析表明,成分彼此不相互作用。然而,Fe3O4略微转化到其他氧化铁中。然而,磁性分析显示该转化对纳米纤维的最终磁性含量没有显着影响。 X射线衍射(XRD)(19.5nm),透射电子显微镜(TEM)(21.6nm)和振动样品磁力计(VSM)(17nm)的结果表明磁性纳米粒子是单结构域。热分析结果表明,7%Fe3O4纳米纤维在替代磁场(AMF)中的其他纳米纤维复合材料中具有更多的热量增加。尽管如此,根据其特定功率吸收(SPA),3%Fe3O4纳米纤维的热性能比其它更多的。因此,由于在最不可能含量使用纳米颗粒的重要性,通过将这些纳米纤维复合材料作为肿瘤位点上的植入物施加这些方法,该方法可以用作后尿剂处理。此外,这些纳米纤维复合材料可以携带抗癌药物,其施加为多模治疗系统。

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