A microscopic model for ultrafast remagnetization dynamics
ORAL
Abstract
In this work, we provide a microscopic model for the ultrafast remagnetization of atomic moments already quenched above Stoner-Curie temperature by a strong laser fluence. Combining first principles density functional theory, atomistic spin dynamics utilizing the Landau-Lifshitz-Gilbert equation and a three temperature model, we show the temporal evolution of atomic moments as well as the macroscopic magnetization of bcc Fe and hcp Co covering a broad time scale, ranging from femtoseconds to picoseconds. Our simulations show [1] a variety of complex temporal behavior of the magnetic properties resulting from an interplay between electron, spin and lattice subsystems, which causes an intricate time evolution of the atomic moment, where longitudinal and transversal fluctuations result in a macro spin moment that evolves highly non-linearly.\\[4pt] [1] Raghuveer Chimata, Anders Bergman, Lars Bergqvist, Biplab Sanyal and Olle Eriksson, Phys. Rev. Lett. {\bf 109}, 157201 (2012).
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Authors
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Biplab Sanyal
Dept. of Physics and Astronomy, Uppsala University, Sweden
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Raghuveer Chimata
Dept. of Physics and Astronomy, Uppsala University, Sweden
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Anders Bergman
Dept. of Physics and Astronomy, Uppsala University, Sweden
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Lars Bergqvist
Department of Materials Science and Engineering, KTH, Sweden
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Olle Eriksson
Dept. of Physics and Astronomy, Uppsala University, Sweden