Title :
Improvement of magnetomechanical properties of cobalt ferrite by magnetic annealing
Author :
Lo, C.C.H. ; Ring, A.P. ; Snyder, J.E. ; Jiles, D.C.
Author_Institution :
Ames Lab., Iowa State Univ., Ames, IA, USA
Abstract :
We report dramatic improvements in both magnetostriction level and strain derivative of polycrystalline cobalt ferrite as a result of magnetic annealing. Magnetostrictive cobalt ferrite composites have potential for use in advanced magnetomechanical stress and torque sensors due to their high sensitivity of magnetization to applied stresses and high levels of magnetostriction. Results show that annealing cobalt ferrite at 300°C in air for 36 h under a dc field of 318 kA/m (4 kOe) induced a uniaxial anisotropy with the easy axis being along the annealing field direction. Under hard axis applied fields, the maximum magnetostriction measured along the hard axis at room temperature increased in magnitude from -200×10-6to -252×10-6 after annealing. The maximum strain derivative (dλ/dH)max, which is related to stress sensitivity, increased from 1.5×10-9 A-1m to 3.9×10-9 A-1m. The results can be interpreted in terms of the effects of induced uniaxial anisotropy on the domain structure and magnetization processes.
Keywords :
cobalt compounds; ferrites; magnetic anisotropy; magnetic annealing; magnetostriction; 300 C; 36 h; cobalt ferrite composites; magnetic anisotropy; magnetic annealing; magnetomechanical properties; magnetostriction level; polycrystalline cobalt ferrite; strain derivative; uniaxial anisotropy; Anisotropic magnetoresistance; Annealing; Cobalt; Ferrites; Magnetic anisotropy; Magnetic field induced strain; Magnetic properties; Magnetostriction; Perpendicular magnetic anisotropy; Stress; Induced anisotropy; magnetic annealing; magnetoelastic stress sensor; magnetostrictive cobalt ferrite;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2005.854790