Effects of thermal perturbations on magnetic dissipative droplet solitons
arXiv:1601.00048 · doi:10.1103/PhysRevB.93.144408
Abstract
The magnetic dissipative droplet is a strongly nonlinear wave structure that can be stabilized in a thin film ferromagnet exhibiting perpendicular magnetic anisotropy by use of spin transfer torque. These structures have been observed experimentally at room temperature, showcasing their robustness against noise. Here, we quantify the effects of thermal noise by deriving the stochastic equations of motion for a droplet based on soliton perturbation theory. First, it is found that deterministic droplets are linearly unstable at large bias currents, subject to a drift instability. When the droplet is linearly stable, our framework allows us to analytically compute the droplet's generation linewidth and center variance. Additionally, we study the influence of non-local and Oersted fields with micromagnetic simulations, providing insight into their effect on the generation linewidth. These results motivate detailed experiments on the current and temperature-dependent linewidth as well as drift instability statistics of droplets, which are important figures-of-merit in the prospect of droplet-based applications.
10 pages, 6 figures
References in corpus (4)
- Theory for a dissipative droplet soliton excited by a spin torque nanocontact
- Direct Observation of Large Amplitude Spin Excitations Localized in a Spin-Transfer Nanocontact
- Observation of droplet soliton drift resonances in a spin-transfer-torque nanocontact to a ferromagnetic thin film
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Cited by in corpus (10)
- Magnetic droplet solitons generated by pure spin currents
- Magnetic Droplet Soliton Nucleation in Oblique Fields
- Magnetic Droplet Solitons
- Effect of temperature on spin-transfer torque induced magnetic solitons
- Chiral excitations of magnetic droplet solitons driven by their own inertia
- Spin-torque switching mechanisms of perpendicular magnetic tunnel junctions nanopillars
- Stochastic ejection of nanocontact droplet solitons via drift instability
- 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
- Thermally Activated Transitions Between Micromagnetic States