Breaking the Fluctuation-Dissipation Relation by Universal Transport Processes
arXiv:1810.12392 · doi:10.1103/PhysRevLett.122.150401
Abstract
Universal phenomena far from equilibrium exhibit additional independent scaling exponents and functions as compared to thermal universal behavior. For the example of an ultracold Bose gas we simulate nonequilibrium transport processes in a universal scaling regime and show how they lead to the breaking of the fluctuation-dissipation relation. As a consequence, the scaling of spectral functions (commutators) and statistical correlations (anticommutators) between different points in time and space become linearly independent with distinct dynamic scaling exponents. As a macroscopic signature of this phenomenon we identify a transport peak in the statistical two-point correlator, which is absent in the spectral function showing the quasiparticle peaks of the Bose gas.
5 pages, 5 figures
References in corpus (11)
- Critical Dynamics of Spontaneous Symmetry Breaking in a Homogeneous Bose gas
- Non-thermal fixed points: effective weak-coupling for strongly correlated systems far from equilibrium
- Observation of universal dynamics in a spinor Bose gas far from equilibrium
- Observation of universal dynamics in an isolated one-dimensional Bose gas far from equilibrium
- Temperature in and out of equilibrium: a review of concepts, tools and attempts
- An update on nonequilibrium linear response
- Universality far from equilibrium: From superfluid Bose gases to heavy-ion collisions
- Critical Dynamics of a Two-dimensional Superfluid near a Non-Thermal Fixed Point
- Kinetic theory of non-thermal fixed points in a Bose gas
- Spectral function for overoccupied gluodynamics from real-time lattice simulations
- Large-N kinetic theory for highly occupied systems
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