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Influence of Fe-Doping on the Structural and Magnetic Properties of ZnO Nanopowders, Produced by the Method of Pulsed Electron Beam Evaporation

机译:铁掺杂对脉冲电子束蒸发法制备ZnO纳米粉结构和磁性的影响

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The nanopowders (NPs) ZnO-Zn-Fe and ZnO-Fe with the various concentrations of Fe (x_(Fe)) (0 ≤ x_(Fe) ≤ 0.619 mass.%) were prepared by the pulsed electron beam evaporation method. The influence of doping Fe on structural and magnetic properties of NPs was investigated. X-ray diffraction showed that powders contain fine-crystalline and coarse-crystalline ZnO fractions with wurtzite structure and an amorphous component. Secondary phases were not found. The magnetic measurements made at room temperature, using the vibration magnetometer and Faraday's scales, showed ferromagnetic behavior for all powders. Magnetization growth of NPs ZnO-Zn and ZnO-Zn-Fe was detected after their short-term annealing on air at temperatures of 300-500℃. The growth of magnetization is connected with the increase in the concentration of the phase ZnO with a defective structure as the result of oxidation nanoparticles (NPles) of Zn. The scanning transmission electron microscopy (STEM) showed a lack of Fe clusters and uniform distribution of atoms dopant in the initial powder ZnO-Zn-Fe. A lack of logical correlation between magnetization and concentration of a magnetic dopant of Fe in powders is shown.
机译:通过脉冲电子束蒸发法制备了不同浓度的Fe(x_(Fe))(0≤x_(Fe)≤0.619质量%)的纳米粉体ZnO-Zn-Fe和ZnO-Fe。研究了掺杂Fe对NPs结构和磁性的影响。 X射线衍射表明,粉末包含具有纤锌矿结构和无定形组分的细晶和粗晶ZnO级分。找不到次要阶段。使用振动磁力计和法拉第秤在室温下进行的磁性测量显示了所有粉末的铁磁性能。 NPs ZnO-Zn和ZnO-Zn-Fe在空气中于300-500℃温度下进行短期退火后,发现其磁化生长。磁化的增长与具有缺陷结构的相ZnO浓度的增加有关,这是由于Zn的氧化纳米颗粒(NPles)的结果。扫描透射电子显微镜(STEM)显示在初始粉末ZnO-Zn-Fe中缺乏铁簇和原子掺杂剂的均匀分布。显示出粉末中Fe的磁化强度与磁性掺杂剂浓度之间缺乏逻辑相关性。

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  • 来源
    《Journal of nanotechnology》 |2016年第2016期|8281247.1-8281247.13|共13页
  • 作者单位

    Institute of Electrophysics, Russian Academy of Sciences, Ural Branch, Amundsen Street 106, Yekaterinburg 620016, Russia,Yeltsin Ural Federal University, Mira Street 19, Yekaterinburg 620002, Russia;

    Institute of Electrophysics, Russian Academy of Sciences, Ural Branch, Amundsen Street 106, Yekaterinburg 620016, Russia,Yeltsin Ural Federal University, Mira Street 19, Yekaterinburg 620002, Russia;

    Institute of Electrophysics, Russian Academy of Sciences, Ural Branch, Amundsen Street 106, Yekaterinburg 620016, Russia,Yeltsin Ural Federal University, Mira Street 19, Yekaterinburg 620002, Russia;

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