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Classical spin model of the relaxation dynamics of rare-earth doped permalloy

Ellis, M. O.A.; Ostler, T. A.; Chantrell, R. W.

Authors

M. O.A. Ellis

T. A. Ostler

R. W. Chantrell



Abstract

In this paper, the ultrafast dynamic behavior of rare-earth doped permalloy is investigated using an atomistic spin model with Langevin dynamics. In line with experimental work, the effective Gilbert damping is calculated from transverse relaxation simulations, which shows that rare-earth doping causes an increase in the damping. Analytic theory suggests that this increase in damping would lead to a decrease in the demagnetization time. However, longitudinal relaxation calculations show an increase with doping concentration instead. The simulations are in a good agreement with previous experimental work of Radu. The longitudinal relaxation time of the magnetization is shown to be driven by the interaction between the transition metal and the laser-excited conduction electrons, whereas the effective damping is predominantly determined by the slower interaction between the rare-earth elements and the phonon heat bath. We conclude that for complex materials, it is evidently important not to expect a single damping parameter but to consider the energy transfer channel relevant to the technique and time scale of the measurement. © 2012 American Physical Society.

Citation

Ellis, M. O., Ostler, T. A., & Chantrell, R. W. (2012). Classical spin model of the relaxation dynamics of rare-earth doped permalloy. Physical review B: Condensed matter and materials physics, 86(17), Article 174418. https://doi.org/10.1103/PhysRevB.86.174418

Journal Article Type Article
Online Publication Date Nov 19, 2012
Publication Date Nov 1, 2012
Deposit Date Jun 15, 2022
Journal Physical Review B - Condensed Matter and Materials Physics
Print ISSN 1098-0121
Electronic ISSN 1550-235X
Publisher American Physical Society
Peer Reviewed Peer Reviewed
Volume 86
Issue 17
Article Number 174418
DOI https://doi.org/10.1103/PhysRevB.86.174418
Public URL https://hull-repository.worktribe.com/output/4014539