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Magnetic and spectroscopic properties of Ni-Zn-Al ferrite spinel: from the nanoscale to microscale

机译:Ni-Zn-Al铁素体尖晶石的磁性和光谱性能:从纳米级到Microscale

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摘要

This article presents the annealing effect on the structural, elastic, thermodynamic, optical, magnetic, and electric properties of Ni0.6Zn0.4Fe1.5Al0.5O4(NZFAO) nanoparticles (NPs). The samples were successfully synthesized by the sol-gel method followed by annealing of the as-synthesized at 600, 800, 900, 1050, and 1200 degrees C. This approach yielded the formation of a highly crystalline structure with crystallite size ranging from 17 nm to 40 nm. X-ray diffraction (XRD), scanning electron microscopy (SEM) techniques, as well as energy disperse spectroscopy (EDS), Fourier transform infrared (FTIR) and Raman spectroscopy, were used in order to determine the structural and morphological properties of the prepared samples. Rietveld XRD refinement reveals that Ni-Zn-Al ferrite nanoparticles crystallize in inverse cubic (Fd3m) spinel structure. Using FTIR spectra, the elastic and thermodynamic properties were estimated. It was observed that the particle size had a pronounced effect on elastic and thermodynamic properties. Magnetic measurements were performed up to 700 K. The prepared ferrite samples present the highest Curie temperature, which decreases with increasing particle size and which is consistent with finite-size scaling. The thickness of the surface shell of about 1 nm was estimated from size-dependent magnetization measurements using the core-shell model. Besides, spin resonance, magnetostriction, temperature coefficient of resistance (TCR), and electrical resistivity properties have been scientifically studied and appear to be different according to their size. The optical properties of synthesized NZFAO nanoparticles were investigated, and the differences caused by the particle sizes are discussed on the basis of the phonon confinement effect. This effect was also inspected by the Raman analysis. Tuning of the physical properties suggests that the Ni-Zn-Al ferrite samples may be promising for multifunctional diverse applications.
机译:本文介绍了Ni0.6Zn0.4Fe1.5Al0.5O4(NZFAO)纳米颗粒(NPS)的结构,弹性,热力学,光学,磁性和电学性能的退火效果。通过溶胶 - 凝胶方法成功地合成样品,然后通过在600,800,900,1050和1200℃下退火。该方法产生高度结晶结构的结晶尺寸范围从17nm的晶体尺寸的形成到40 nm。 X射线衍射(XRD),扫描电子显微镜(SEM)技术以及能量分散光谱(EDS),傅里叶变换红外(FTIR)和拉曼光谱,以确定所制备的结构和形态学性质样品。 RIETVELD XRD改进揭示了Ni-Zn-Al铁氧体纳米粒子以反立方(FD3M)尖晶石结构结晶。使用FTIR光谱,估计弹性和热力学性质。观察到粒度对弹性和热力学性质具有明显的影响。磁性测量值高达700 k。制备的铁氧体样品呈现最高的居里温度,随着粒度的增加而降低,并且与有限尺寸的缩放一致。使用核心壳模型从尺寸相关的磁化测量估计约1nm的表面壳的厚度。此外,还在科学地研究了旋转共振,磁致伸缩,温度系数(TCR)和电阻率特性,并且根据其尺寸看起来不同。研究了合成的NZFAO纳米颗粒的光学性质,并根据声子限制效果讨论了由粒度引起的差异。拉曼分析还检查了这种效果。物理性质的调整表明Ni-Zn-Al铁氧体样本可能对多功能各种应用有望。

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  • 来源
    《RSC Advances》 |2020年第57期|共25页
  • 作者单位

    Univ Sfax Fac Sci Lab Phys Appl BP 1171 Sfax 3000 Tunisia;

    Univ Sfax Fac Sci Lab Phys Appl BP 1171 Sfax 3000 Tunisia;

    CNRS UMR 7182 UPEC CMTR ICMPE 2 Rue Henri Dunant F-94320 Thiais France;

    Univ Sfax Fac Sci Lab Phys Appl BP 1171 Sfax 3000 Tunisia;

    Univ Gabes Lab Phys Mat &

    Nanomat Appl Environm Fac Sci Gabes Cite Erriadh Gabes 6079 Tunisia;

    Univ Aix Marseille Fac Sci St Jerome IM2NP CNRS Case 142 F-13397 Marseille France;

    CNRS UMR 7182 UPEC CMTR ICMPE 2 Rue Henri Dunant F-94320 Thiais France;

    Univ J Fourier CNRS Inst Neel BP 166 F-38042 Grenoble France;

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  • 正文语种 eng
  • 中图分类 化学;
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