Soft to hard magnetic anisotropy in nanostructured magnets
- 1 September 1998
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 58 (9) , 5193-5196
- https://doi.org/10.1103/physrevb.58.5193
Abstract
The effective anisotropy of hard-soft magnetic nanostructures is analyzed using the concept of the exchange correlation length of both phases. The dependence of coercivity on volume fraction, fluctuation length, temperature, and magnetic properties of the components is derived from the degree of magnetic coupling, defined through an effective interphase exchange constant. Coercivity and remanence measurements carried out on devitrified FeZrBCu amorphous alloys point out the transition from an uncoupled to a coupled regime by increasing the temperature in a very diluted system, according to the predictions of the analysis.Keywords
This publication has 10 references indexed in Scilit:
- Micromagnetic examination of exchange coupled ferromagnetic nanolayersJournal of Magnetism and Magnetic Materials, 1997
- Curie-temperature enhancement of ferromagnetic phases in nanoscale heterogeneous systemsPhysical Review B, 1996
- Exchange interactions through amorphous paramagnetic layers in ferromagnetic nanocrystalsPhysical Review B, 1994
- New nanocrystalline high-remanence Nd-Fe-B alloys by rapid solidificationJournal of Magnetism and Magnetic Materials, 1993
- Giant energy product in nanostructured two-phase magnetsPhysical Review B, 1993
- On the Role of Intergranular Exchange Coupling in the Magnetization Process of Permanent-Magnet MaterialsEurophysics Letters, 1992
- B materials: Intrinsic properties and technological aspectsReviews of Modern Physics, 1991
- Oscillations in exchange coupling and magnetoresistance in metallic superlattice structures: Co/Ru, Co/Cr, and Fe/CrPhysical Review Letters, 1990
- Grain structure and magnetism of nanocrystalline ferromagnetsIEEE Transactions on Magnetics, 1989
- Random anisotropy in amorphous ferromagnetsJournal of Applied Physics, 1978