Directed percolation criticality in turbulent liquid crystals
arXiv:0706.4151 · doi:10.1103/PhysRevLett.99.234503
Abstract
We experimentally investigate the critical behavior of a phase transition between two topologically different turbulent states of electrohydrodynamic convection in nematic liquid crystals. The statistical properties of the observed spatiotemporal intermittency regimes are carefully determined, yielding a complete set of static critical exponents in full agreement with those defining the directed percolation class in (2+1) dimensions. This constitutes the first clear and comprehensive experimental evidence of an absorbing phase transition in this prominent non-equilibrium universality class.
4 pages, 4 figures
Cited by in corpus (7)
- Contact process on a Voronoi triangulation
- Weakly disordered absorbing-state phase transitions
- Long-range epidemic spreading with immunization
- Chaotic synchronizations of spatially extended systems as non-equilibrium phase transitions
- Boundary-induced nonequilibrium phase transition into an absorbing state
- Scaling of hysteresis loops at phase transitions into a quasiabsorbing state
- Crossover from directed percolation to mean field behavior in the diffusive contact process