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首页> 外文期刊>Journal of Applied Physics >Surface spin effects in La-doped CoFe_2O_4 nanoparticles prepared by microemulsion route
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Surface spin effects in La-doped CoFe_2O_4 nanoparticles prepared by microemulsion route

机译:微乳液法制备La掺杂CoFe_2O_4纳米粒子的表面自旋效应

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A comparative study of pure CoFe_2O_4 nanoparticles and La-doped CoFe_2O_4 nanoparticles, prepared by microemulsion route has been performed. The samples were characterized using x-ray diffraction and transmission electron microscopy in order to obtain average particle size. The doping of small amount of La~(3+) ions (up to 3 molar %) causes significant reduction of the particle size using the identical preparation route. The samples were investigated by magnetization measurements, which revealed the coercivity values strongly dependent on particle size, but not significantly on level of La~(3+) doping. Detailed in-field Mossbauer spectroscopy studies were performed in order to determine spin canting angles and cation distribution within the spinel network. The non-negligible canting angles up to 40° in the La-doped samples were observed. The presence of the spin surface effects was also supported by magnetic measurement as the magnetization did not saturate even in considerably high magnetic fields (7 T). Moreover, significantly reduced values of the saturation magnetization were obtained. The observed features originated by the surface spin disorder in nanosized particles are explained in the frame of the core-shell model.
机译:通过微乳液法制备了纯CoFe_2O_4纳米粒子和掺La的CoFe_2O_4纳米粒子的比较研究。使用X射线衍射和透射电子显微镜对样品进行表征,以获得平均粒径。使用相同的制备路线,少量的La〜(3+)离子(最高3摩尔%)的掺杂会导致粒径显着减小。通过磁化测量对样品进行了研究,结果表明矫顽力值强烈依赖于粒径,但不显着依赖于La〜(3+)掺杂水平。为了确定自旋倾斜角和尖晶石网络内的阳离子分布,进行了详细的现场Mossbauer光谱研究。在掺La的样品中观察到高达40°的不可忽略的倾斜角。磁性测量也支持了自旋表面效应的存在,因为即使在相当高的磁场(7 T)中,磁化强度也不会饱和。此外,获得了明显降低的饱和磁化强度值。在核-壳模型的框架中解释了由纳米颗粒中的表面自旋无序引起的观察到的特征。

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  • 来源
    《Journal of Applied Physics 》 |2011年第7期| p.073902.1-073902.7| 共7页
  • 作者单位

    Institute of Physics of the ASCR, v.v.i., Department of Functional Materials, Na Slovance 2,182 21 Prague 8, Czech Republic;

    Institute of Physics of the ASCR, v.v.i., Department of Functional Materials, Na Slovance 2,182 21 Prague 8, Czech Republic;

    Charles University Prague, Faculty of Science, Department of Inorganic Chemistry, Albertov 2030, 128 40 Prague 2, Czech Republic,Institute of Inorganic Chemistry of the ASCR, v.v.i., 25 068 Rez u Prahy, Czech Republic;

    Charles University Prague, Faculty of Science, Department of Inorganic Chemistry, Albertov 2030, 128 40 Prague 2, Czech Republic;

    Charles University Prague, Faculty of Science, Department of Inorganic Chemistry, Albertov 2030, 128 40 Prague 2, Czech Republic;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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