Stochastic Resonance and Dynamic First-Order Pseudo-Phase Transitions in the Irreversible Growth of Thin Films under Spatially Periodic Magnetic Fields
arXiv:1310.5259 · doi:10.1103/PhysRevE.88.042412
Abstract
We study the irreversible growth of magnetic thin films under the influence of spatially periodic fields by means of extensive Monte Carlo simulations. We find first-order pseudo-phase transitions that separate a dynamically disordered phase from a dynamically ordered phase. By analogy with time-dependent oscillating fields applied to Ising-type models, we qualitatively associate this dynamic transition with the localization/delocalization transition of "spatial hysteresis" loops. Depending on the relative width of the magnetic film, , compared to the wavelength of the external field, , different transition regimes are observed. For small systems (), the transition is associated with the Standard Stochastic Resonance regime, while, for large systems (), the transition is driven by Anomalous Stochastic Resonance. The origin of the latter is identified as due to the emergence of an additional relevant lengthscale, namely the roughness of the spin domain switching interface. The distinction between different stochastic resonance regimes is discussed at length, both qualitatively by means of snapshot configurations, as well as quantitatively via residence-length and order-parameter probability distributions.
21 pages, 8 figures. To appear in Phys. Rev. E
References in corpus (10)
- Absence of First-order Transition and Tri-critical Point in the Dynamic Phase Diagram of a Spatially Extended Bistable System in an Oscillating Field
- Dynamic phase transition in the three-dimensional kinetic Ising model in an oscillating field
- Low-temperature nucleation in a kinetic Ising model with soft stochastic dynamics
- Stochastic resonance and heat fluctuations in a driven double-well system
- Hysteretic response characteristics and dynamic phase transition via site dilution in the kinetic Ising model
- Determination of intrinsic switching field distributions in perpendicular recording media: numerical study of the method
- Nonequilibrium Critical Behavior of Magnetic Thin Films Grown in a Temperature Gradient
- Dynamical Monte Carlo investigation of spin reversals and nonequilibrium magnetization of single-molecule magnets
- The Magnetic Eden Model
- Far-from-equilibrium growth of thin films in a temperature gradient