Title :
Role of P in Nanocrystallization of
Author :
Matsuura, Makoto ; Yan Zhang ; Nishijima, Masahiko ; Makino, Akihiro
Author_Institution :
R&D Center for Ultra-High-Efficiency Nanocrystalline Soft Magn. Mater., Tohoku Univ., Sendai, Japan
Abstract :
The role of P in the nanocrystallization of a newly developed Fe-based Fe85Si2B8P4Cu1 soft magnet (NANOMET) is investigated by differential scanning calorimetry (DSC), high-energy X-ray diffraction (XRD), and transmission electron microscope. DSC results show that addition of P into Fe85Si2B8P4Cu1 retards growth of α-Fe precipitates and also hinders the onset of crystallization of the residual amorphous phase. High-energy XRD results indicate that a lattice parameter of the precipitated α-Fe is 2.86652 Å, which is very close to that of pure bcc Fe. A small amount of P and/or Si, however, are resolved in nanocrystalline Fe, which causes Curie temperature (TC) of the precipitated α-Fe to decrease by ΔTC = 31 K lower than the value of pure bcc Fe. With increase in the volume fraction of the precipitated α-Fe, the concentration of residual amorphous becomes close to that of the most stable amorphous alloy, i.e., Fe76Si9B10P5 when the volume fraction approaches to 40%. P in NANOMET contributes to hinder the formation of Fe-B(Si,P) compounds by stabilizing residual amorphous phase.
Keywords :
Curie temperature; X-ray diffraction; amorphous magnetic materials; boron alloys; copper alloys; crystallisation; differential scanning calorimetry; iron alloys; lattice constants; nanofabrication; nanomagnetics; nanostructured materials; phosphorus alloys; precipitation; silicon alloys; soft magnetic materials; transmission electron microscopy; α-Fe precipitates; Curie temperature; DSC; Fe-based soft magnet; Fe85Si2B8P4Cu; NANOMET; XRD; amorphous alloy; differential scanning calorimetry; high-energy X-ray diffraction; lattice parameter; nanocrystalline material; nanocrystallization; residual amorphous phase; transmission electron microscopy; volume fraction; Amorphous magnetic materials; Annealing; Crystallization; Iron; Soft magnetic materials; X-ray scattering; Differential scanning calorimetry; NANOMET; nanocrystallization; soft magnetic materials; synchrotron radiation;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2013.2285247