Giant nonlinear damping in nanoscale ferromagnets

Barsukov I.; Lee H.K.; Jara A.A.; Chen Y.-J.; Gonçalves A.M.; Sha C.; Katine J.A.; Arias R.E.; Ivanov B.A.; Krivorotov I.N.

Abstract

Magnetic damping is a key metric for emerging technologies based on magnetic nanoparticles, such as spin torque memory and high-resolution biomagnetic imaging. Despite its importance, understanding of magnetic dissipation in nanoscale ferromagnets remains elusive, and the damping is often treated as a phenomenological constant. Here, we report the discovery of a giant frequency-dependent nonlinear damping that strongly alters the response of a nanoscale ferromagnet to spin torque and microwave magnetic field. This damping mechanism originates from three-magnon scattering that is strongly enhanced by geometric confinement of magnons in the nanomagnet. We show that the giant nonlinear damping can invert the effect of spin torque on a nanomagnet, leading to an unexpected current-induced enhancement of damping by an antidamping torque. Our work advances the understanding of magnetic dynamics in nanoscale ferromagnets and spin torque devices.

Más información

Título según WOS: Giant nonlinear damping in nanoscale ferromagnets
Título según SCOPUS: Giant nonlinear damping in nanoscale ferromagnets
Título de la Revista: SCIENCE ADVANCES
Volumen: 5
Número: 10
Editorial: AMER ASSOC ADVANCEMENT SCIENCE
Fecha de publicación: 2019
Idioma: English
DOI:

10.1126/sciadv.aav6943

Notas: ISI, SCOPUS