
Reorientation in antiferromagnetic multilayers: Spin‐flop transition and surface effects
Author(s) -
Rößler Ulrich K.,
Bogdanov Alexei N.
Publication year - 2004
Publication title -
physica status solidi (c)
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.21
H-Index - 46
eISSN - 1610-1642
pISSN - 1610-1634
DOI - 10.1002/pssc.200405441
Subject(s) - condensed matter physics , antiferromagnetism , superlattice , ferromagnetism , magnetoresistance , magnetization , materials science , anisotropy , spin crossover , magnetic anisotropy , spin (aerodynamics) , phase diagram , magnetic field , phase (matter) , physics , optics , thermodynamics , quantum mechanics
Nanoscale superlattices with uniaxial ferromagnetic layers antiferromagnetically coupled through nonmagnetic spacers are recently used as components of magnetoresistive and recording devices. In the last years intensive experimental investigations of these artificial antiferromagnets have revealed a large variety of surface induced reorientational effects and other remarkable phenomena unknown in other magnetic materials. In this paper we review and generalize theoretical results, which enable a consistent description of the complex magnetization processes in antiferromagnetic multilayers, and we explain the responsible physical mechanism. The general structure of phase diagrams for magnetic states in these systems is discussed. In particular, our results resolve the long standing problem of a “surface spin‐flop” in antiferromagnetic layers. This explains the different appearance of field‐driven reorientation transitions in systems like Fe/Cr (001) and (211) superlattices, and in [CoPt]/Ru multilayers with strong perpendicular anisotropy.