Theory for a dissipative droplet soliton excited by a spin torque nanocontact
arXiv:1008.1898 · doi:10.1103/PhysRevB.82.054432
Abstract
A novel type of solitary wave is predicted to form in spin torque oscillators when the free layer has a sufficiently large perpendicular anisotropy. In this structure, which is a dissipative version of the conservative droplet soliton originally studied in 1977 by Ivanov and Kosevich, spin torque counteracts the damping that would otherwise destroy the mode. Asymptotic methods are used to derive conditions on perpendicular anisotropy strength and applied current under which a dissipative droplet can be nucleated and sustained. Numerical methods are used to confirm the stability of the droplet against various perturbations that are likely in experiments, including tilting of the applied field, non-zero spin torque asymmetry, and non-trivial Oersted fields. Under certain conditions, the droplet experiences a drift instability in which it propagates away from the nanocontact and is then destroyed by damping.
15 pages, 12 figures
References in corpus (4)
- Spin Transfer Torques
- Magnetic Vortex Resonance in Patterned Ferromagnetic Dots
- Understanding of complex periodic transformations of moving domain walls in magnetic nanostripes
- Magnetization oscillations induced by a spin-polarized current in a point-contact geometry: mode hopping and non-linear damping effects
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- Symmetry-broken dissipative exchange flows in thin-film ferromagnets with in-plane anisotropy
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- Propagating magnetic droplet solitons as moveable nanoscale spin-wave sources with tunable direction of emission
- Stable solitons in a nearly PT-symmetric ferromagnet with spin-transfer torque
- Tuning the dynamics of magnetic droplet solitons using dipolar interactions
- Thermal Activation Barriers for Creation and Annihilation of Magnetic Droplet Solitons in the Presence of Spin Transfer Torque
- Dynamical magnetic skyrmions
- Non-equilibrium self-assembly of spin-wave solitons in FePt nanoparticles