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Magnetic and electronic properties of bimagnetic materials comprising cobalt particles within hollow silica decorated with magnetite nanoparticles

机译:在中空的二氧化硅中包含钴颗粒并用磁铁矿纳米颗粒装饰的双磁性材料的磁性和电子性质

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摘要

Bimagnetic materials were fabricated by decorating the external surface of rattle-type hollow silica microspheres (which themselves contain metallic cobalt nanoparticles) with magnetite nanoparticles; thus, each magnetic substance was spatially isolated by the silica shell. The amount of magnetite decoration on the co-occluded hollow silica was varied from 1 to 17 mass %. Magnetic and electronic properties of the resulting bimagnetic materials were characterized by superconducting quantum interference device measurements and X-ray absorption spectroscopy, respectively. The ferrous iron in the bimagnetic sample was slightly more oxidized than in the magnetite reference, probably from some charge-transfer because of the SiO2 surface contact, although the overall oxidation state of the samples is very similar to that of magnetite. The temperature dependence of the sample magnetization recorded with Zero Field Cooling and Field Cooling resulted in blocking temperatures for the bimagnetic materials that were close to that of magnetite nanoparticles (176 K) and were lower than that for the bare Co-occluded hollow silica (which was above room temperature). Values of coercive force and exchange bias at 300 K became quite small after decoration with only minimal amounts of magnetite nanoparticles (1–3 mass %) and were lower than those of magnetite. This is the first example of enhancing superparamagnetism by spatial separation of both Co and magnetite magnetic nanoparticles using a thin wall of diamagnetic silica.
机译:通过用磁铁矿纳米粒子装饰嘎嘎声型空心二氧化硅微球(其本身含有金属钴纳米粒子)的外表面来制造双磁性材料。因此,每种磁性物质在空间上都被二氧化硅壳隔离。共吸空心二氧化硅上的磁铁矿装饰量为1至17质量%。分别通过超导量子干涉仪测量和X射线吸收光谱法表征了所得双磁性材料的磁性和电子性质。双磁性样品中的亚铁氧化程度比磁铁矿中的略高,这可能是由于SiO 2 表面接触引起的一些电荷转移,尽管样品的总体氧化态与磁铁矿。零磁场冷却和磁场冷却记录的样品磁化强度的温度依赖性导致双磁性材料的结块温度接近于磁铁矿纳米颗粒的结块温度(176 K),并且低于裸露的Co包藏的空心二氧化硅的结块温度。高于室温)。装饰后仅用最小量的磁铁矿纳米颗粒(1-3质量%),在300 K时的矫顽力和交换偏压的值变得很小,并且低于磁铁矿。这是使用抗磁性二氧化硅薄壁通过空间分离Co和磁铁矿磁性纳米粒子来增强超顺磁性的第一个示例。

著录项

  • 来源
    《Journal of Applied Physics》 |2013年第12期|1-8|共8页
  • 作者单位

    Department of Chemistry and Material Engineering, Shinshu University, Wakasato 4-17-1, Nagano 380-8553, Japan|c|;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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