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首页> 外文期刊>Journal of Applied Polymer Science >Electrospun magnetic fibrillar polyarylene ether nitriles nanocomposites reinforced with Fe-phthalocyanine/Fe_3O_4 hybrid microspheres
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Electrospun magnetic fibrillar polyarylene ether nitriles nanocomposites reinforced with Fe-phthalocyanine/Fe_3O_4 hybrid microspheres

机译:Fe-酞菁/ Fe_3O_4杂化微球增强的电纺磁性原纤状聚亚芳基醚腈纳米复合材料

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摘要

The electrospinning method has been employed to fabricate ultrafine nanofibers of high-performance polyarylene ether nitriles (PEN) and PEN/Fe-phthalocyanine/Fe_3O_4 nanocomposite fibers for the first time. Through optimizing the operational conditions, such as polymer concentration, applied electric voltage, federate, and distance between needle tip and collector, bead-free and uniform fibers with smooth surfaces and certain diameters were obtained. The morphology of the PEN nanofibers is correlated to the corresponding rheological behaviors of the polymer solutions. The nanocomposite fibers showed a beads-in-string structures without agglomeration after introducing the Fe-phthalocyanine/Fe_3O_4 hybrid microspheres in the polymer fibers. Thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC) reveal an enhanced thermal stability of the nanocomposite fibers after introducing the hybrids. The glass transition temperature (Tg) of the nanocomposite fibers increases by 10°C with 30 wt % hybrid microspheres, compared with those of the pure PEN fibers. The magnetic properties of the PEN/Fe-phthalocyanine/Fe_3O_4 nanocomposite fibers are different from those of the hybrid microspheres. The hybrid microspheres in the composite nanofibers become magnetically harder with a much larger coercivity than that of the fillers.
机译:静电纺丝方法已被首次用于制造高性能聚亚芳基醚腈(PEN)和PEN / Fe-酞菁/ Fe_3O_4纳米复合纤维的超细纳米纤维。通过优化操作条件,例如聚合物浓度,施加的电压,联邦金属和针尖与收集器之间的距离,获得了无珠子且具有均匀表面和一定直径的均匀纤维。 PEN纳米纤维的形态与聚合物溶液的相应流变行为相关。在将Fe-酞菁/ Fe_3O_4杂化微球引入聚合物纤维中后,纳米复合纤维表现出无团聚的串珠状结构。引入杂化后,热重分析(TGA)和差示扫描量热法(DSC)揭示了纳米复合纤维增强的热稳定性。与纯PEN纤维相比,纳米复合纤维在30 wt%杂化微球中的玻璃化转变温度(Tg)提高了10°C。 PEN / Fe-酞菁/ Fe_3O_4纳米复合纤维的磁性与杂化微球的磁性不同。复合纳米纤维中的杂化微球的磁性变硬,矫顽力比填料大得多。

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