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对在两个不同温度下退火的尖晶石型LiZnFeO纳米颗粒的结构、光学、弹性和电学性质的研究。

Investigation of the structural, optical, elastic and electrical properties of spinel LiZnFeO nanoparticles annealed at two distinct temperatures.

作者信息

Bouokkeze D, Massoudi J, Hzez W, Smari M, Bougoffa A, Khirouni K, Dhahri E, Bessais L

机构信息

Laboratoire de Physique des Matériaux et des Nanomatériaux appliquée à l'Environnement, Faculté des Sciences de Gabès cité Erriadh, Université de Gabès 6079 Gabès Tunisia.

Laboratoire de Physique Appliquée, Faculté des Sciences de Sfax, Université de Sfax B.P. 1171 Sfax 3000 Tunisia

出版信息

RSC Adv. 2019 Dec 11;9(70):40940-40955. doi: 10.1039/c9ra07569k. eCollection 2019 Dec 9.

Abstract

Nanoparticles of LiZnFeO (LiZnFeO) with the spinel structure were prepared by a sol-gel auto-combustion method at two different annealing temperatures. X-ray diffractograms and Rietveld refinement confirmed the formation of the spinel structure. The morphology was analyzed by electron microscopy, which showed that the grains were composed of different crystallites. Elastic properties were determined from infrared spectroscopy. It was found that the elastic parameters increased with the increase in annealing temperatures. The band gap depends on the annealing temperature and it decreased on increasing the particle size. The conductivity of the specimen annealed at 500 °C followed either the Jonscher's model or Drude's model depending on the temperature range. This conductivity decreased when the annealing temperature was raised by 600 °C. AC conductivity was found to be controlled by the hopping model. A single relaxation phenomenon was evidenced for each sample from impedance analysis. The Nyquist diagram proved that the samples were simultaneously capacitive and resistive and also supported the presence of multiple relaxation times.

摘要

采用溶胶-凝胶自燃烧法在两种不同的退火温度下制备了具有尖晶石结构的LiZnFeO纳米颗粒。X射线衍射图和Rietveld精修证实了尖晶石结构的形成。通过电子显微镜分析了其形貌,结果表明晶粒由不同的微晶组成。通过红外光谱测定了弹性性能。发现弹性参数随退火温度的升高而增加。带隙取决于退火温度,并且随着粒径的增加而减小。在500℃退火的试样的电导率根据温度范围遵循Jonscher模型或Drude模型。当退火温度升至600℃时,该电导率降低。发现交流电导率受跳跃模型控制。通过阻抗分析证明每个样品都存在单一弛豫现象。奈奎斯特图证明样品同时具有电容性和电阻性,并且还支持存在多个弛豫时间。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c85/9076384/95f439c3f1c3/c9ra07569k-f1.jpg

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