Kawai R, Sailer X, Schimansky-Geier L, Van den Broeck C
Department of Physics, University of Alabama at Birmingham, 1300 University Boulevard, Birmingham, Alabama 35294, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2004 May;69(5 Pt 1):051104. doi: 10.1103/PhysRevE.69.051104. Epub 2004 May 14.
Bistability generated via a pure noise-induced phase transition is reexamined from the view of bifurcations in macroscopic cumulant dynamics. It allows an analytical study of the phase diagram in more general cases than previous methods. In addition, using this approach we investigate spatially extended systems with two degrees of freedom per site. For this system, the analytic solution of the stationary Fokker-Planck equation is not available and a standard mean field approach cannot be used to find noise-induced phase transitions. A different approach based on cumulant dynamics predicts a noise-induced phase transition through a Hopf bifurcation leading to a macroscopic limit cycle motion, which is confirmed by numerical simulation.