Title :
Hf Doping Effect on Hard Magnetism of
Nanocrystalline Zr
Hf
Author :
Al-Omari, I.A. ; Zhang, William Y. ; Lanping Yue ; Skomski, Ralph ; Shield, J.E. ; Li, X.Z. ; Sellmyer, David J.
Author_Institution :
Dept. of Phys., Sultan Qaboos Univ., Muscat, Oman
Abstract :
The effects of substituting Zr by Hf on the structural and the magnetic properties of the nanocrystalline rapidly solidified Zr18-xHfxCo82 ribbons (x = 0, 2, 4, and 6) have been studied. X-ray diffraction and thermomagnetic measurement results indicated that upon rapid solidification processing four magnetic phases occur: rhombohedral Zr2Co11, orthorhombic Zr2Co11, hcp Co, and cubic Zr6Co23 phases. Microstructure analysis results showed the reduction in the percentage of the soft-magnetic phase (Co) compared to the hard-magnetic phase (Zr2 Co11 (rhombohedral)) with the increase in the Hf concentration. All the samples under investigation have ferromagnetic nature, at 4.2 K and at room temperature. The coercive force (Hc) and the saturation magnetization are (Ms) found to linearly increases with x (x ≤ 2), then Hc slightly increases and Ms slightly decreases with increasing x. The maximum energy product (BH)max at room temperature is found to increases with increasing x reaching a maximum value for x = 4. The magnetocrystalline anisotropy parameter of these samples are calculated to be K = 1.1 MJ/m3 and independent of Hf concentration. The above results indicate that the replacement of Zr by Hf improves the hard-magnetic properties of this class of rear-earth-free nanocrystalline permanent magnet materials.
Keywords :
X-ray diffraction; cobalt alloys; coercive force; doping; hafnium alloys; magnetic anisotropy; nanomagnetics; nanoribbons; permanent magnets; rapid solidification; zirconium alloys; X-ray diffraction; Zr18-xHfxCo82; coercive force; cubic phase; doping effect; ferromagnetic nature; hard magnetism; hard-magnetic phase; hcp phase; magnetic properties; magnetocrystalline anisotropy; microstructural analysis; nanocrystalline ribbons; orthorhombic phase; rapid solidification; rear-earth-free nanocrystalline permanent magnet materials; rhombohedral phase; saturation magnetization; soft-magnetic phase; structural properties; temperature 293 K to 298 K; temperature 4.2 K; thermomagnetic properties; Hafnium; Magnetic properties; Perpendicular magnetic anisotropy; Saturation magnetization; Zirconium; Energy; magnetization; microstructure; nanomaterials; permanent magnets;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2013.2245498