Title :
Formation of metastable Pr2Fe23B3 phase and its effect on magnetic properties in rapidly quenched Pr9Fe91-xBx nanocomposites
Author :
Chen, Zhongmin ; Smith, Benjamin R. ; Ma, Bao-Min ; Huang, Mei-Qing ; Wu, Ya-Qiao ; Kramer, Matthew J.
Author_Institution :
Magnequench Technol. Center, Durham, NC, USA
Abstract :
The formation of metastable Pr2Fe23B3 phase and its effect on magnetic properties of melt-spun Pr9Fe91-xBx (x = 4-12) have been investigated. Thermogravimetric analysis (TGA) and X-ray diffraction (XRD) studies show that the samples consist of Pr2Fe14B and α-Fe phases at low B content, and Pr2Fe14B, α-Fe and Fe3B at high B content. The metastable Pr2Fe23B3 phase appears in the intermediate B content (8-12 at%). This metastable Pr2Fe23B3 phase results in a poor squareness in the demagnetization curve and is detrimental to the hard magnetic properties. Transmission electron microscopy (TEM) studies reveal larger average grain sizes when the B content is at 8.5 at% or above. It is further found that this metastable phase can be transformed into Pr2Fe14B, α-Fe, and Fe3B by annealing the sample at temperature of 750°C or above, leading to a more square demagnetization curve. However, Br of the nanocomposite decreases slightly due to the excessive grain growth during high-temperature annealing.
Keywords :
X-ray diffraction; annealing; boron alloys; demagnetisation; ferromagnetic materials; grain growth; grain size; iron alloys; melt spinning; nanocomposites; permanent magnets; phase equilibrium; praseodymium alloys; quenching (thermal); thermal analysis; transmission electron microscopy; α-Fe phase; 750 degC; Fe3B; Pr2Fe14B; Pr2Fe14B phase; Pr2Fe23B3; Pr9Fe87B4; X-ray diffraction; demagnetization curve poor squareness; grain sizes; hard magnetic properties; high B content; high-temperature annealing; intermediate B content; low B content; magnetic properties; melt-spun Pr9Fe91-xBx; metastable Pr2Fe23B3 phase; metastable phase; nanocomposite; rapidly quenched Pr9Fe91-xBx nanocomposites; thermogravimetric analysis; transmission electron microscopy; Annealing; Demagnetization; Grain size; Iron; Magnetic analysis; Magnetic properties; Metastasis; Transmission electron microscopy; X-ray diffraction; X-ray scattering;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2003.815891