Anisotropy effects on the magnetic excitations of a ferromagnetic monolayer below and above the Curie temperature
M. G. Pini, P. Politi, and R. L. Stamps

TL;DR
This paper investigates how magnetic anisotropy influences the behavior of magnetic excitations in a ferromagnetic monolayer across different temperatures, revealing continuous and discontinuous reorientation transitions and anisotropic magnon energy gaps above the Curie temperature.
Contribution
It provides a finite-temperature Green's function analysis of field-driven reorientation transitions, highlighting temperature-dependent discontinuities and anisotropic magnon gaps above the Curie point.
Findings
Reorientation is continuous at T=0 and discontinuous at T>0.
Magnon energy gap does not vanish at the reorientation field for T>0.
Magnetic anisotropy persists above the Curie temperature.
Abstract
The field-driven reorientation transition of an anisotropic ferromagnetic monolayer is studied within the context of a finite-temperature Green's function theory. The equilibrium state and the field dependence of the magnon energy gap are calculated for static magnetic field applied in plane along an easy or a hard axis. In the latter case, the in-plane reorientation of the magnetization is shown to be continuous at T=0, in agreement with free spin wave theory, and discontinuous at finite temperature , in contrast with the prediction of mean field theory. The discontinuity in the orientation angle creates a jump in the magnon energy gap, and it is the reason why, for , the energy does not go to zero at the reorientation field. Above the Curie temperature , the magnon energy gap vanishes for H=0 both in the easy and in the hard case. As is increased,…
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