Ultrahigh Permeability at High Frequencies via A Magnetic‐Heterogeneous Nanocrystallization Mechanism in an Iron‐Based Amorphous Alloy

Author:

Zhou Jing123,Li Xuesong14,Hou Xibei1,Ke Haibo1,Fan Xingdu5,Luan Junhua6,Peng Hailong7,Zeng Qiaoshi8,Lou Hongbo8,Wang Jianguo3,Liu Chain Tsuan6,Shen Baolong5,Sun Baoan129ORCID,Wang Weihua12349,Bai Haiyang129ORCID

Affiliation:

1. Songshan Lake Materials Laboratory Dongguan 523808 China

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

3. School of Mechanical Engineering Dongguan University of Technology Dongguan 523808 China

4. School of Energy Power and Mechanical Engineering North China Electric Power University Beijing 102206 China

5. School of Materials Science and Engineering Southeast University Nanjing 211189 China

6. Department of Materials Science Engineering College of Science and Engineering City University of Hong Kong Hong Kong 999077 China

7. School of Materials Science and Engineering Central South University 932 South Lushan Rd Changsha 410083 China

8. Center for High Pressure Science and Technology Advanced Research Pudong Shanghai 201203 China

9. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

Abstract

AbstractThe prevalence of wide‐bandgap (WBG) semiconductors allows modern electronic devices to operate at much higher frequencies. However, development of soft magnetic materials with high‐frequency properties matching the WBG‐based devices remains challenging. Here, a promising nanocrystalline–amorphous composite alloy with a normal composition Fe75.5Co0.5Mo0.5Cu1Nb1.5Si13B8 in atomic percent is reported, which is producible under industrial conditions, and which shows an exceptionally high permeability at high frequencies up to 36 000 at 100 kHz, an increase of 44% compared with commercial FeSiBCuNb nanocrystalline alloy (25 000 ± 2000 at 100 kHz), outperforming all existing nanocrystalline alloy systems and commercial soft magnetic materials. The alloy is obtained by a unique magnetic‐heterogeneous nanocrystallization mechanism in an iron‐based amorphous alloy, which is different from the traditional strategy of nanocrystallization by doping nonmagnetic elements (e.g., Cu and Nb). The induced magnetic inhomogeneity by adding Co atoms locally promotes the formation of highly ordered structures acting as the nuclei of nanocrystals, and Mo atoms agglomerate around the interfaces of the nanocrystals, inhibiting nanocrystal growth, resulting in an ultrafine nanocrystalline–amorphous dual‐phase structure in the alloy. The exceptional soft magnetic properties are shown to be closely related to the low magnetic anisotropy and the unique spin rotation mechanism under alternating magnetic fields.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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