Self-organized spiral patterns at the edge of an order-disorder nonequilibrium phase transition

dc.coverageDOI: 10.1103/PhysRevE.103.052215
dc.creatorLima Dias Pinto, Italo'Ivo
dc.creatorEscaff, Daniel
dc.creatorRosas, Alexandre
dc.date2021
dc.date.accessioned2025-11-18T19:41:06Z
dc.date.available2025-11-18T19:41:06Z
dc.description<p>We present a spatially extended version of the Wood-Van den Broeck-Kawai-Lindenberg stochastic phase-coupled oscillator model. Our model is embedded in two-dimensional (2d) array with a range-dependent interaction. The Wood-Van den Broeck-Kawai-Lindenberg model is known to present a phase transition from a disordered state to a globally oscillatory phase in which the majority of the units are in the same discrete phase. Here we address a parameter combination in which such global oscillations are not present. We explore the role of the interaction range from a nearest neighbor coupling in which a disordered phase is observed and the global coupling in which the population concentrate in a single phase. We find that for intermediate interaction range the system presents spiral wave patterns that are strongly influenced by the initial conditions and can spontaneously emerge from the stochastic nature of the model. Our results present a spatial oscillatory pattern not observed previously in the Wood-Van den Broeck-Kawai-Lindenberg model and are corroborated by a spatially extended mean-field calculation.</p>eng
dc.descriptionWe present a spatially extended version of the Wood-Van den Broeck-Kawai-Lindenberg stochastic phase-coupled oscillator model. Our model is embedded in two-dimensional (2d) array with a range-dependent interaction. The Wood-Van den Broeck-Kawai-Lindenberg model is known to present a phase transition from a disordered state to a globally oscillatory phase in which the majority of the units are in the same discrete phase. Here we address a parameter combination in which such global oscillations are not present. We explore the role of the interaction range from a nearest neighbor coupling in which a disordered phase is observed and the global coupling in which the population concentrate in a single phase. We find that for intermediate interaction range the system presents spiral wave patterns that are strongly influenced by the initial conditions and can spontaneously emerge from the stochastic nature of the model. Our results present a spatial oscillatory pattern not observed previously in the Wood-Van den Broeck-Kawai-Lindenberg model and are corroborated by a spatially extended mean-field calculation.spa
dc.identifierhttps://investigadores.uandes.cl/en/publications/861f7d64-eb56-4d2f-a000-9638517d5122
dc.identifier.urihttps://repositorio.uandes.cl/handle/uandes/51637
dc.languageeng
dc.rightsinfo:eu-repo/semantics/restrictedAccess
dc.sourcevol.103 (2021) date: 2021-05-01 nr.5
dc.subjectInitial conditions
dc.subjectMean-field calculations
dc.subjectNearest-neighbor coupling
dc.subjectNonequilibrium phase transitions
dc.subjectOscillatory patterns
dc.subjectParameter combination
dc.subjectPhase-coupled oscillators
dc.subjectTwo dimensional (2D) arrays
dc.titleSelf-organized spiral patterns at the edge of an order-disorder nonequilibrium phase transitioneng
dc.typeArticleeng
dc.typeArtículospa
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