Optical reflectivity and magnetoelectric effects on resonant plasmon modes in composite metal-multiferroic systems
arXiv:1303.5296 · doi:10.1016/j.optcom.2013.08.082
Abstract
The rôle of the magnetoelectric effect upon optical reflectivity is studied by adapting an electrodynamic-based model for a system composed by a 2D metallic film in contact with an extended multiferroic material exhibiting weak ferromagnetism. The well-known \emph{Nakayama's} boundary condition is reformulated by taking into account the magnetoelectric coupling as well as an externally applied magnetic field in an arbitrary direction. It is found that the reflectance shows strong fluctuations for incident radiation close to the characteristic antiferromagnetic resonance frequency associated with the multiferroic material in the THz regime. These results were verified for a 10 nm metallic foil by using a finite element method (FEM) and the Rouard's approach, for a wide range of wavelengths (0.1 - 5 mm), showing good agreement with respect to Nakayama's outcome, for the particular material BaMnF.
6 pages, 9 figures PACS Numbers: 73.20.-e, 75.82.+t, 78.20.Bh, 78.66.Bz
References in corpus (7)
- Spin current and magneto-electric effect in non-collinear magnets
- Theory of surface plasmons and surface-plasmon polaritons
- Surface Magnetoelectric Effect in Ferromagnetic Metal Films
- Asymmetric Spin-wave Dispersion on Fe(110): Direct Evidence of Dzyaloshinskii--Moriya Interaction
- Dynamical magneto-electric coupling in helical magnets
- Detection of coherent magnons via ultrafast pump-probe reflectance spectroscopy in multiferroic Ba0.6Sr1.4Zn2Fe12O22
- Terahertz magnetoelectric response via electromagnons in magnetic oxides