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Improved thermal stability of FeNiCo-based nanocrystalline soft magnetic alloys enabled by Ni segregation in the amorphous matrix
- Choi, Kwangsu;
- Jung, Chanwon;
- Yi, Seonghoon
WEB OF SCIENCE
16SCOPUS
16초록
Recently, the growing need to minimize energy losses and enhance the performance of electronic devices has underscored the importance of developing soft magnetic materials. Specifically, high-frequency alternating current (AC) applications demand soft magnetic materials with excellent thermal stability and high electrical resistivity. In this study, we designed FeCoNi-based amorphous alloys with the composition (Fe, Ni)82.5 _ xCoxSi8B4P4C1.5 (x = 0, 5, 10, 15 at%). Among the alloys, the (Fe, Ni)67.5Co15Si8B4P4C1.5 alloy displayed crystallization behavior with a single body-centered cubic phase after annealing at temperatures ranging from 350-500 degrees C for 288 h. Following crystallization, the microstructure of the alloy comprised spherical crystallites embedded within a residual amorphous matrix, stabilized by Ni species expelled during crystallization. Annealing at 500 degrees C produced a finer grain structure compared to that at 350 degrees C, owing to the higher nucleation rate observed at elevated temperatures. This unique microstructure characterized by nanocrystallites embedded within a stable amorphous matrix enabled the (Fe, Ni)67.5Co15Si8B4P4C1.5 alloy, annealed at 500 degrees C, to exhibit excellent thermal stability at high temperatures, along with favorable soft magnetic properties. Furthermore, the electrical resistivity of the nanocrystalline alloy exceeded 138 mu S2 center dot cm, surpassing the resistivities of commercial polycrystalline, amorphous, and nanocrystalline soft magnetic alloys. These attributes highlight its potential as a promising material for high-frequency AC applications.
키워드
- 제목
- Improved thermal stability of FeNiCo-based nanocrystalline soft magnetic alloys enabled by Ni segregation in the amorphous matrix
- 저자
- Choi, Kwangsu; Jung, Chanwon; Yi, Seonghoon
- 발행일
- 2025-02-05
- 유형
- Article
- 권
- 1014
- 언어
- ENG
- 출판사
- ELSEVIER SCIENCE SA
- 발행국가
- 스위스
- ISSN
- E 1873-4669
P 0925-8388