Spin dynamics and damping in nanomagnets measured directly by frequency-resolved magneto-optic Kerr effect
Michael L. Schneider, Justin M. Shaw, A. B. Kos, Th. Gerrits, T. J. Silva, R. D. McMichael
Abstract
Michael L. Schneider, Justin M. Shaw, A. B. Kos, Th. Gerrits, T. J. Silva, R. D. McMichael
Abstract
The spin dynamics of sub-100-nm Ni80Fe20 nanomagnets are directly measured using the magneto-optic Kerr effect and a broadband detection scheme. Elliptical dots approximately 68nm in diameter and 10nm thick were fabricated in 20×20μm2 arrays. There is approximately a factor of 2 increase in the effective linewidth when compared to a 20μm diameter continuous disk of the same material. Using micromagnetic simulations, we model the effect of dot-to-dot size variation on the effective linewidth and find that 2nm size variations are more than sufficient to account for the effective increase in linewidth.
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The spin dynamics of sub-100-nm Ni80Fe20 nanomagnets are directly measured using the magneto-optic Kerr effect and a broadband detection scheme. Elliptical dots approximately 68nm in diameter and 10nm thick were fabricated in 20×20μm2 arrays. There is approximately a factor of 2 increase in the effective linewidth when compared to a 20μm diameter continuous disk of the same material. Using micromagnetic simulations, we model the effect of dot-to-dot size variation on the effective linewidth and find that 2nm size variations are more than sufficient to account for the effective increase in linewidth.
Key concepts: Laser linewidth, Nanomagnet, Condensed matter physics, Kerr effect, Magneto-optic Kerr effect, Micromagnetics, Materials science, Permalloy