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High electrical resistivity Nd-Fe-B die-upset magnet doped with eutectic DyF3–LiF salt mixture
Author(s) -
K. M. Kim,
J. Y. Kim,
Hae-Woong Kwon,
D. H. Kim,
Jung-Goo Lee,
Ji–Hun Yu
Publication year - 2017
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4978580
Subject(s) - eutectic system , materials science , electrical resistivity and conductivity , coercivity , doping , remanence , magnet , metallurgy , analytical chemistry (journal) , magnetization , alloy , chemistry , optoelectronics , condensed matter physics , electrical engineering , magnetic field , engineering , physics , quantum mechanics , chromatography
Nd-Fe-B-type die-upset magnet with high electrical resistivity was prepared by doping of eutectic DyF3–LiF salt mixture. Mixture of melt-spun Nd-Fe-B flakes (MQU-F: Nd13.6Fe73.6Co6.6Ga0.6B5.6) and eutectic binary (DyF3–LiF) salt (25 mol% DyF3 – 75 mol% LiF) was hot-pressed and then die-upset. By adding the eutectic salt mixture (> 4 wt%), electrical resistivity of the die-upset magnet was enhanced to over 400 μΩ.cm compared to 190 μΩ.cm of the un-doped magnet. Remarkable enhancement of the electrical resistivity was attributed to homogeneous and continuous coverage of the interface between flakes by the easily melted eutectic salt dielectric mixture. It was revealed that active substitution of the Nd atoms in neighboring flakes by the Dy atoms from the added (DyF3–LiF) salt mixture had occurred during such a quick thermal processing of hot-pressing and die-upsetting. This Dy substitution led to coercivity enhancement in the die-upset magnet doped with the eutectic (DyF3–LiF) salt mixture. Coercivity and remanence of the die-upset magnet doped with (DyF3–LiF) salt mixture was as good as those of the DyF3-doped magnet

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