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通过铁钴基合金中的非晶-纳米晶过渡微观结构实现的超高饱和磁通密度和超低矫顽力

Exceptionally High Saturation Magnetic Flux Density and Ultralow Coercivity via an Amorphous-Nanocrystalline Transitional Microstructure in an FeCo-Based Alloy.

作者信息

Li Xuesong, Zhou Jing, Shen Laiquan, Sun Baoan, Bai Haiyang, Wang Weihua

机构信息

Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, China.

Songshan Lake Materials Laboratory, Dongguan, 523808, China.

出版信息

Adv Mater. 2023 Dec;35(50):e2205863. doi: 10.1002/adma.202205863. Epub 2022 Sep 18.

DOI:10.1002/adma.202205863
PMID:36037072
Abstract

High saturation magnetic flux density (B ) of soft magnetic materials is essential for increasing the power density of modern magnetic devices and motor machines. Yet, increasing B is always at the expense of high coercivity (H ), presenting a general trade-off in the soft magnetic material family. Here, superior comprehensive soft magnetic properties, i.e., an exceptionally high B of up to 1.94 T and H as low as 4.3 A m are unprecedentedly combined in an FeCo-based alloy. This alloy is obtained through a composition design strategy to construct a transitional microstructure between amorphous and traditional nanocrystalline alloys, with nanocrystals (with < 5 nm-sized crystal-like regions around) sparsely dispersed in an amorphous matrix. Such transitional microstructure possesses extremely low magnetic anisotropy caused by the annihilation of quasi-dislocation dipoles, and a strong magnetic exchange interaction, which leads to excellent comprehensive magnetic properties. The results provide useful guidelines for the development of the next generation of soft magnetic materials, which are promising for applications of high-frequency, high-efficiency, and energy-saving devices.

摘要

软磁材料的高饱和磁通密度(B)对于提高现代磁性器件和电机的功率密度至关重要。然而,提高B总是以高矫顽力(H)为代价,这在软磁材料家族中是一个普遍的权衡。在此,一种铁钴基合金前所未有地结合了优异的综合软磁性能,即高达1.94 T的超高B和低至4.3 A/m的H。这种合金是通过一种成分设计策略获得的,以构建一种介于非晶态和传统纳米晶合金之间的过渡微观结构,纳米晶体(周围有<5 nm大小的类晶体区域)稀疏地分散在非晶基体中。这种过渡微观结构具有由准位错偶极子湮灭引起的极低磁各向异性以及强磁交换相互作用,从而导致优异的综合磁性能。这些结果为下一代软磁材料的开发提供了有用的指导方针,有望用于高频、高效和节能器件的应用。

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