4.7 Article

Controllable synthesis and magnetic properties of NiAl0.8Fe1.2O4 electrospun nanofibres

期刊

CERAMICS INTERNATIONAL
卷 48, 期 5, 页码 7117-7125

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2021.11.271

关键词

NiAl0.8Fe1.2O4 nanofibres; Electrospinning; Magnetic properties; Cationic redistribution

资金

  1. National Natural Science Foundation of China [11974104]
  2. Overseas Expertise Introduction Center for Discipline Innovation [D18025]

向作者/读者索取更多资源

In this study, a convenient strategy for fabricating controllable draw ratio of spinel ferrite nanofibres was investigated. The surface topography and draw ratio of the nanofibres can be tuned by adjusting the molarity and polymer concentration of the precursors, calcination temperature and spinning voltage. The magnetic performances of the nanofibres were found to be influenced by the cationic redistribution, which led to an increase in saturation magnetization with increasing calcination temperature. The controllable synthesis strategy and the interpretation of the magnetic properties hold great significance for the application of one-dimensional nanofibres in spintronic and nanomagnetoelectric devices.
A convenient strategy for fabricating spinel ferrite NiAl0.8Fe1.2O4 (NAFO) nanofibres with a controllable draw ratio by an electrospinning technique was investigated. The surface topography and draw ratio of the NAFO nanofibres can be tuned by adjusting the molarity and polymer concentration of the precursors, calcination temperature and spinning voltage. Investigation of the magnetic performances showed that the saturation magnetization of NAFO nanofibres increased with increasing calcination temperature. This was interpreted by considering the cationic redistribution in the oxygen octahedral and oxygen tetrahedral sites of the mixed spinel ferrite as confirmed by X-ray diffraction, Raman spectra and X-ray photoelectron spectroscopy analysis. As the calcination temperature increased, the ferric ions showed a tendency to shift to the oxygen octahedral sites, while the divalent nickel ions showed a tendency to shift to the oxygen tetrahedral sites, which then strengthened the saturation magnetization of the NAFO nanofibres. The controllable synthesis strategy and the interpretation of the magnetic properties will shed some light on the application of one-dimensional NAFO nanofibres in spintronic and nanomagnetoelectric devices.

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