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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Determination of ferrimagnetic and superparamagnetic components of magnetization and the effect of particle size on structural, magnetic and hyperfine properties of Mg0.5Zn0.5Fe2O4 nanoparticles
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Determination of ferrimagnetic and superparamagnetic components of magnetization and the effect of particle size on structural, magnetic and hyperfine properties of Mg0.5Zn0.5Fe2O4 nanoparticles

机译:磁化和超顺磁性分量的测定及粒度对Mg0.5Zn0.5Fe2O4纳米粒子结构,磁性和高血清性能的影响及粒度的影响

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The fine-tuning of magnetic parameters and the identification of different magnetic phases are essential for the effective utilization of magnetic nanoparticles. In this work, we aim at controlling the magnetic parameters of Mg0.5Zn0.5Fe2O4 nanoparticles by varying the particle size and to determine magnetic phases using three analytical techniques having different operating time scales: VSM, ESR, and Mossbauer spectroscopy. Single-phase cubic spinel structured Mg0.5Zn0.5Fe2O4 nanoparticles were prepared by the sol-gel auto-combustion route and calcinated at 200, 300, 500, 700, and 900 degrees C. The cation distribution and structural parameters obtained from the Rietveld analysis had an insignificant variation with the calcination temperature. From the TEM analysis, an increase of the average particle size from 5 to 38 nm and widening of the particle size distribution with the calcination temperature were found. The saturation magnetization increased from 25.6 to 43.7 emu/g with the particle size due to the reduction in the magnetic dead layer thickness. The coercivity decreased from 128 to 31 Oe and the blocking temperature from 76 to 38 K with the particle size and these variations are explained in terms of surface anisotropy and dipolar interactions. Ferrimagnetic, superparamagnetic, and paramagnetic components of magnetization were deconvoluted by the curve fitting of room temperature VSM data. The ferrimagnetic component increased from 56% to 74% and the superparamagnetic component decreased from 37% to 20% respectively with the particle size. The ESR and Mossbauer spectroscopy also identified the ferrimagnetic and superparamagnetic components in the samples and their variations with the particle size were found to be in agreement with that of VSM. Thus, the variation of magnetic parameters in correlation with the particle size offers the possibility of fine-tuning the magnetic parameters of nanoparticles by adjusting the particle size. The deconvolution of magnetic phases using the three analytic methods revealed the coexistence of ferrimagnetic and superparamagnetic components of magnetization in Mg0.5Zn0.5Fe2O4 nanoparticles. Also, this deconvolution unveiled the particle size dependence on the emergence of inhomogeneity in magnetic phases of the samples. (C) 2021 Elsevier B.V. All rights reserved.
机译:磁性参数的微调和不同磁性相的识别对于磁性纳米颗粒的有效利用至关重要。在这项工作中,我们的目标是控制Mg0的磁性参数。5Zn0。5Fe2O4纳米颗粒通过改变颗粒大小,并使用三种具有不同操作时间尺度的分析技术确定磁相:VSM、ESR和穆斯堡尔谱。单相立方尖晶石结构Mg0。5Zn0。5Fe2O4纳米颗粒通过溶胶-凝胶自动燃烧法制备,并在200、300、500、700和900℃下煅烧。通过Rietveld分析获得的阳离子分布和结构参数随煅烧温度变化不大。TEM分析发现,随着煅烧温度的升高,平均粒径从5 nm增加到38 nm,粒径分布也变宽。由于磁性死层厚度的减小,随着粒径的增加,饱和磁化强度从25.6 emu/g增加到43.7 emu/g。矫顽力从128 Oe下降到31 Oe,阻塞温度从76 K下降到38 K,这些变化可以用表面各向异性和偶极相互作用来解释。通过对室温VSM数据的曲线拟合,反褶积了磁化的铁磁、超顺磁和顺磁分量。随着粒径的增大,铁磁性组分从56%增加到74%,超顺磁性组分从37%下降到20%。ESR和穆斯堡尔谱也鉴定了样品中的铁磁性和超顺磁性成分,发现它们随粒径的变化与VSM一致。因此,磁性参数随粒径的变化提供了通过调整粒径微调纳米颗粒磁性参数的可能性。用三种分析方法对磁相进行反褶积,揭示了Mg0中磁化的铁磁和超顺磁成分共存。5Zn0。5Fe2O4纳米颗粒。此外,这种反褶积揭示了颗粒大小与样品磁相不均匀性的关系。(c)2021爱思唯尔B.V.保留所有权利。

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