Title :
Real-time temperature dynamics in exchange-biased bilayers upon laser excitation
Author :
Weber, Markus C. ; Nembach, Hans ; Hillebrands, Burkard ; Fassbender, Jürgen
Author_Institution :
Phys. Dept. & Forschungsschwerpunkt MINAS, Tech. Univ. Kaiserslautern, Germany
fDate :
3/1/2005 12:00:00 AM
Abstract :
A hot-spin and phonon gas in an exchange-biased metallic bilayer is induced by an 8.5-ps laser excitation. The spin-lattice temperature dynamics is sensed in real time by the time evolution of the exchange bias field on the picosecond time scale. A calibration with temperature-dependent quasi-static Kerr measurements yields a pump-pulse induced temperature increase of about 100°C at the interface. Upon photoexcitation, the exchange coupling across the interface between the ferromagnetic and antiferromagnetic layer is reduced within the first 10 ps, leading to a reduction of the bias field to about 50% of its initial value. The fast thermal unpinning of the exchange coupling is followed by a heat-diffusion dominated recovery with a relaxation time on the order of 160 ps. A heat transport analysis reveals the diffusivity of the bilayer system.
Keywords :
exchange interactions (electron); heat transfer; magnetic multilayers; metallic superlattices; optical pumping; recovery; spin-phonon interactions; thermal diffusion; thermomagnetic recording; 160E-12 s; 8.5E-12 s; all-optical pump probe; antiferromagnetic layer; exchange bias field; exchange coupling; exchange-biased metallic bilayer; fast thermal unpinning; ferromagnetic layer; heat transport analysis; heat-assisted magnetic recording; heat-diffusion dominated recovery; hot-spin; laser excitation; phonon gas; photoexcitation; picosecond time scale; pump-pulse induced temperature increase; real-time temperature dynamics; relaxation time; spin-lattice temperature dynamics; temperature-dependent quasi-static Kerr measurement; Antiferromagnetic materials; Electrons; Gas lasers; Heat-assisted magnetic recording; Laser excitation; Magnetic anisotropy; Magnetic field measurement; Phonons; Temperature measurement; Temperature sensors; All-optical pump probe; exchange bias; heat-assisted magnetic recording; temperature dynamics;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2004.841702