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Chemical synthesis of exchange-coupled nanocomposite magnets

机译:交换耦合纳米复合磁体的化学合成

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Summary form only given. Nanocomposite magnets containing soft and hard magnetic phases have attracted immense attention for energy-related and biomedical applications. In particular, good control of the soft and hard phases at the nanoscale in the composites is of great importance for effective exchange coupling, allowing us to make the best of the strengths of soft and hard magnetic phases and to optimize the magnetic properties for targeted applications. Chemical methods offer an effective route to precisely control both phases at the nanoscale, and help understand magnetic interactions and develop advanced magnetic materials for various applications. In this talk, we will present recent progress on chemical synthesis of nanocomposite magnets. Firstly, a general protocol is reported to synthesize exchange-coupled nanoparticles with magnetically hard L1-FePt as core and magnetically soft Co (or Ni, or FeC) as shell. These core/shell nanoparticles show shell thickness-dependent magnetic properties, providing an ideal model system for the study of exchange coupling at nanoscale, which will be essential for building superstrong magnets for various permanent magnet applications in the future. Secondly, we report a facile chemical route to prepare 200 nm single domain SmCo@Co core/shell magnets with coercivity of 20.7 kOe and saturation magnetization of 82 emu/g. We found that the incorporation of graphene oxide sheets are responsible for the generation of the unique structure. The single domain SmCo core contributes to the large coercivity of the magnets and the exchange-coupled Co shell enhances the magnetization. This method can be further utilized in the synthesis other Sm-Co based exchange-coupled magnets. Thirdly, we developed chemical ways to prepare L1-FePd/-Fe and NdFeB/-Fe nanocomposite magnets, providing a bottom-up approach using exchange-coupled nanocomposite magnets for - ngineering advanced permanent magnets with controllable magnetic properties.
机译:仅提供摘要表格。包含软磁性相和硬磁性相的纳米复合磁体在与能源相关的生物医学应用中引起了极大的关注。特别是,对复合物中的纳米级软相和硬相进行良好的控制对于有效的交换耦合非常重要,这使我们能够充分利用软磁相和硬磁相的强度,并针对目标应用优化磁性能。 。化学方法提供了一种在纳米级精确控制两个相的有效途径,并有助于理解磁性相互作用并开发用于各种应用的高级磁性材料。在本次演讲中,我们将介绍化学合成纳米复合磁体的最新进展。首先,据报道,通用协议合成了以硬磁L1-FePt为核芯和软磁Co(或Ni或FeC)为壳的交换耦合纳米粒子。这些核/壳纳米粒子显示出壳厚度相关的磁性,为研究纳米级的交换耦合提供了理想的模型系统,这对于将来为各种永磁应用构建超强磁体至关重要。其次,我们报告了一种简便的化学路线来制备200 nm单畴SmCo @ Co核/壳磁体,其矫顽力为20.7 kOe,饱​​和磁化强度为82 emu / g。我们发现掺入氧化石墨烯片负责独特结构的产生。单畴SmCo磁芯有助于提高磁体的矫顽力,而交换耦合的Co壳层则可增强磁化强度。该方法可进一步用于合成其他基于Sm-Co的交换耦合磁体。第三,我们开发了化学方法来制备L1-FePd / -Fe和NdFeB / -Fe纳米复合磁体,提供了一种使用交换耦合纳米复合磁体的自下而上的方法,用于-具有可控磁性能的高级永磁体。

著录项

  • 来源
  • 会议地点 Beijing(CN)
  • 作者

    Liu F.; Hou Y.;

  • 作者单位

    Dept. of Mater. Sci. Eng., Peking Univ., Beijing, China;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
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