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首页> 外文期刊>Journal of magnetism and magnetic materials >On the advantages of spring magnets compared to pure FePt: Strategy for rare-earth free permanent magnets following a bottom-up approach
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On the advantages of spring magnets compared to pure FePt: Strategy for rare-earth free permanent magnets following a bottom-up approach

机译:与纯FePt相比,弹簧磁体的优势:自下而上的无稀土永磁体策略

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摘要

Nanostructured magnets benefiting from efficient exchange-coupling between hard and soft grains represent an appealing approach for integrated miniaturized magnetic power sources. Using a bottom-up approach, nanostructured materials were prepared from binary assemblies of 6cc FeCo and fee FePt nanoparticles and compared with pure L1_o-FePt materials. The use of a bifunctional mercapto benzoic acid yields homogeneous assemblies of the two types of particles while reducing the organic matter amount. The 650 ℃ thermal annealing, mandatory to allow the L1_o-FePt phase transition, led to an important interdiffusion and thus decreased drastically the amount of soft phase present in the final composites. The analysis of recoil curves however evidenced the presence of an efficient interphase exchange coupling, which allows obtaining better magnetic performances than pure L1_o FePt materials, energy product above 100 kj m~(-3) being estimated for a Pt content of only 33%. These results clearly evidenced the interest of chemically grown nanoparticles for the preparation of performant spring-magnets, opening promising perspective for integrated subcentimetric magnets with optimized properties.
机译:受益于硬晶粒和软晶粒之间有效交换耦合的纳米结构磁体代表了集成小型磁电源的一种有吸引力的方法。采用自下而上的方法,由6cc FeCo和FePt纳米颗粒的二元组装制备了纳米结构材料,并与纯L1_o-FePt材料进行了比较。使用双官能巯基苯甲酸可产生两种类型颗粒的均质组装,同时减少有机物的量。 650℃的热退火(强制允许L1_o-FePt相变)导致了重要的相互扩散,从而大大降低了最终复合材料中软相的含量。然而,反冲曲线的分析证明了有效的相间交换耦合的存在,与纯的L1oFePt材料相比,它能获得更好的磁性能,在100 kj m〜(-3)以上的能量乘积估计只有33%的Pt含量。这些结果清楚地证明了化学生长的纳米粒子对制备高性能弹簧磁铁的兴趣,为具有优化性能的集成式亚重量磁铁开辟了有希望的前景。

著录项

  • 来源
    《Journal of magnetism and magnetic materials》 |2017年第2期|304-313|共10页
  • 作者单位

    Universite de Toulouse, UMR 5215 INSA, CNRS, UPS, Laboratoire de Physique et Chimie des Nano-Objets, 135 avenue de Rangueil, F-31077 Toulouse Cedex 4, France;

    Universite de Toulouse, UMR 5215 INSA, CNRS, UPS, Laboratoire de Physique et Chimie des Nano-Objets, 135 avenue de Rangueil, F-31077 Toulouse Cedex 4, France;

    Universite de Toulouse, UMR 5215 INSA, CNRS, UPS, Laboratoire de Physique et Chimie des Nano-Objets, 135 avenue de Rangueil, F-31077 Toulouse Cedex 4, France,Centre d'Elaboration de Materiaux et d'Etudes Structurales, CEMES-CNRS, 29 rue Jeanne Marvig, B.P. 94347, 31055 Toulouse, France;

    Universite de Toulouse, UMR 5215 INSA, CNRS, UPS, Laboratoire de Physique et Chimie des Nano-Objets, 135 avenue de Rangueil, F-31077 Toulouse Cedex 4, France;

    Universite de Toulouse, UMR 5215 INSA, CNRS, UPS, Laboratoire de Physique et Chimie des Nano-Objets, 135 avenue de Rangueil, F-31077 Toulouse Cedex 4, France;

    Siemens AG, Corporate Technology, Munich, Germany;

    Siemens AG, Corporate Technology, Munich, Germany;

    Siemens AG, Corporate Technology, Munich, Germany;

    Transpyrenean Advanced Laboratory for Electron Microscopy (TALEM), INSA - INA, CNRS - Universidad de Zaragoza, 30155 Toulouse, France,Laboratorio de Microscopias Avanzadas (IMA), Instituto de Nanociencia de Aragon (INA), U. Zaragoza, C/Mariano Esquillor s, 50018 Zaragoza, Spain,Fundacion ARAID, 50018 Zaragoza, Spain;

    Universite de Toulouse, UMR 5215 INSA, CNRS, UPS, Laboratoire de Physique et Chimie des Nano-Objets, 135 avenue de Rangueil, F-31077 Toulouse Cedex 4, France;

    Universite de Toulouse, UMR 5215 INSA, CNRS, UPS, Laboratoire de Physique et Chimie des Nano-Objets, 135 avenue de Rangueil, F-31077 Toulouse Cedex 4, France;

    Universite de Toulouse, UMR 5215 INSA, CNRS, UPS, Laboratoire de Physique et Chimie des Nano-Objets, 135 avenue de Rangueil, F-31077 Toulouse Cedex 4, France,Transpyrenean Advanced Laboratory for Electron Microscopy (TALEM), INSA - INA, CNRS - Universidad de Zaragoza, 30155 Toulouse, France;

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  • 正文语种 eng
  • 中图分类
  • 关键词

    Spring exchange; Magnetic nanoparticles; Recoil curves; Binary assembly; L1_o-FePt; Soft phase;

    机译:春季交换;磁性纳米粒子;后坐曲线二进制汇编;L1_o-FePt;软相;

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