Theoretical and experimental studies of Fe<sub>2</sub>P based alloys as possible rare-earth free permanent magnets
POSTER
Abstract
The Fe2P alloy exhibits high saturation magnetization Ms, large uniaxial magnetic anisotropy Ku, and excellent thermal stability, which make it a potential permanent magnet; however, it suffers from relatively low coercivity Hc, and Curie temperature Tc below room temperature. In this presentation, using systematic theoretical and experimental investigations, we report that multi-element substitutions of Co for Fe, and Si and B for P site (among 3d and 2p-3p substitutional elements) enhance permanent magnetic performance, while retaining its thermodynamic stability. Specifically, we find Hc values up to 1 kOe at room temperature and Tc values more than 500 K at a magnetic field of 2 T in (Fe,Co)2(P,Si,B), leading to the theoretical energy product (BH)max of 126 kJ/m3 and hardness parameter no less than 1 at room temperature, which are notably larger than the corresponding values for known rare-earth free permanent magnetic materials. These results suggest a venue for significant advances in the development of permanent magnetic materials based on the Fe2P-type structure.
Publication: Fe2P based alloys as possible rare-earth free permanent magnets, under review in Acta Materialia
Presenters
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Dorj Odkhuu
Incheon National University
Authors
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Dorj Odkhuu
Incheon National University
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Enkhnaran Uyanga
Mongolian Academy of Sciences
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Tumentsereg Ochirkhuyag
Incheon National University
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Narmandakh Jargalan
Mongolian Academy of Sciences
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Dorj Sodkhuu
Mongolian Academy of Sciences
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Khorgolkhuu Odbadrakh
Oak Ridge National Laboratory
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Jihoon Park
Korea Institute of Materials Science