Synthesis and investigation of polyvinylpyrrolidone-polymer content on magnetic and electromagnetic properties of electrospun BiFeO3, SrFe12O19, α-Fe2O3 nanostructures

Vahid Salehi Maghaddam, A. Gholizadeh
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Abstract

A one-pot electrospinning technique was employed to synthesize polyvinylpyrrolidone (PVP)-based nanofibers containing bismuth ferrite (BiFeO3), strontium hexaferrite (SrFe12O19), and hematite (α-Fe2O3). The influence of PVP polymer concentration on structural properties revealed the formation of pure phases in all samples, except for BiFeO3 nanofibers, which contained an impurity Bi2Fe4O9 phase. Field-emission scanning electron microscope images showed that higher PVP concentrations resulted in longer, thicker nanofiber chains for all samples. Vibrating sample magnetometer analysis indicated that SrFe12O19 nanofibers exhibited strong ferrimagnetic properties with high saturation magnetization (60 emu/g) and coercivity (5000 Oe), while the other samples displayed weaker magnetic properties. To address the fragility of nanofibers produced via the one-pot method, the highest PVP concentration nanofibers were incorporated into low and high concentrations of paraffin matrices. Electromagnetic testing showed that paraffin concentration significantly increased the real part of electrical permittivity for BiFeO3 nanofibers (from ~2 to ~4.5) compared to other compositions (~2 to ~3). Impedance results revealed that BiFeO3 nanofibers had the lowest resistance and likely higher reflectivity. Lastly, the real permittivity of nanofibers decreased with increasing frequency, aligning with Koop's dielectric relaxation theory.
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聚乙烯吡咯烷酮聚合物含量对电纺丝 BiFeO3、SrFe12O19 和 αFe2O3 纳米结构的磁性和电磁特性的合成与研究
采用单锅电纺丝技术合成了含有铁铋(BiFeO3)、六铁锶(SrFe12O19)和赤铁矿(α-Fe2O3)的聚乙烯吡咯烷酮(PVP)基纳米纤维。PVP 聚合物浓度对结构特性的影响表明,除 BiFeO3 纳米纤维含有杂质 Bi2Fe4O9 相外,所有样品都形成了纯相。场发射扫描电子显微镜图像显示,PVP 浓度越高,所有样品的纳米纤维链越长、越粗。振动样品磁力计分析表明,SrFe12O19 纳米纤维具有较强的铁磁性,具有较高的饱和磁化率(60 emu/g)和矫顽力(5000 Oe),而其他样品的磁性较弱。为了解决一锅法生产的纳米纤维易碎的问题,将最高 PVP 浓度的纳米纤维分别加入低浓度和高浓度的石蜡基质中。电磁测试表明,与其他成分(~2~~3)相比,石蜡浓度显著提高了 BiFeO3 纳米纤维的实际电导率(从 ~2 到 ~4.5)。阻抗结果显示,BiFeO3 纳米纤维的电阻最低,反射率可能更高。最后,纳米纤维的实际介电常数随着频率的增加而降低,这与库普的介电弛豫理论一致。
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