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由Pd/Fe3O4核壳纳米颗粒转化而来的交换耦合fct-FePd/α-Fe纳米复合磁体。

Exchange-coupled fct-FePd/α-Fe nanocomposite magnets converted from Pd/Fe3O4 core/shell nanoparticles.

作者信息

Liu Fei, Dong Yunhe, Yang Wenlong, Yu Jing, Xu Zhichuan, Hou Yanglong

机构信息

Department of Materials Science and Engineering, College of Engineering, Peking University, Beijing 100871 (P.R. China), Fax: (+86) 010-62753115.

出版信息

Chemistry. 2014 Nov 10;20(46):15197-202. doi: 10.1002/chem.201403787. Epub 2014 Sep 26.

Abstract

We report the controlled synthesis of exchange-coupled face-centered tetragonal (fct) FePd/α-Fe nanocomposite magnets with variable Fe concentration. The composite was converted from Pd/Fe3O4 core/shell nanoparticles through a high-temperature annealing process in a reducing atmosphere. The shell thickness of core/shell Pd/Fe3O4 nanoparticles could be readily tuned, and subsequently the concentration of Fe in nanocomposite magnets was controlled. Upon annealing reduction, the hard magnetic fct-FePd phase was formed by the interdiffusion between reduced α-Fe and face-centered cubic (fcc) Pd, whereas the excessive α-Fe remained around the fct-FePd grains, realizing exchange coupling between the soft magnetic α-Fe and hard magnetic fct-FePd phases. Magnetic measurements showed variation in the magnetic properties of the nanocomposite magnets with different compositions, indicating distinct exchange coupling at the interfaces. The coercivity of the exchange-coupled nanocomposites could be tuned from 0.7 to 2.8 kOe and the saturation magnetization could be controlled from 93 to 160 emu g(-1). This work provides a bottom-up approach using exchange-coupled nanocomposites for engineering advanced permanent magnets with controllable magnetic properties.

摘要

我们报道了具有可变铁浓度的交换耦合面心四方(fct)FePd/α-Fe纳米复合磁体的可控合成。该复合材料是通过在还原气氛中进行高温退火处理,由Pd/Fe3O4核壳纳米颗粒转变而来。核壳Pd/Fe3O4纳米颗粒的壳层厚度可以很容易地调节,随后纳米复合磁体中铁的浓度也得到了控制。在退火还原过程中,通过还原的α-Fe与面心立方(fcc)Pd之间的相互扩散形成了硬磁fct-FePd相,而过量的α-Fe则保留在fct-FePd晶粒周围,实现了软磁α-Fe与硬磁fct-FePd相之间的交换耦合。磁性测量表明,不同组成的纳米复合磁体的磁性能存在差异,这表明在界面处存在明显的交换耦合。交换耦合纳米复合材料的矫顽力可以从0.7调整到2.8 kOe,饱和磁化强度可以从93控制到160 emu g(-1)。这项工作提供了一种自下而上的方法,利用交换耦合纳米复合材料来设计具有可控磁性能的先进永磁体。

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