Holographic thermalization with a chemical potential from Born-Infeld electrodynamics
arXiv:1412.3878 · doi:10.1007/JHEP02(2015)103
Abstract
The problem of holographic thermalization in the framework of Einstein gravity coupled to Born-Infeld nonlinear electrodynamics is investigated. We use equal time two-point correlation functions and expectation values of Wilson loop operators in the boundary quantum field theory as probes of thermalization, which have dual gravity descriptions in terms of geodesic lengths and minimal area surfaces in the bulk spacetime. The full range of values of the chemical potential per temperature ratio on the boundary is explored. The numerical results show that the effect of the charge on the thermalization time is similar to the one obtained with Maxwell electrodynamics, namely the larger the charge the later thermalization occurs. The inverse Born-Infeld parameter, on the other hand, has the opposite effect: the more nonlinear the theory is, the sooner it thermalizes. We also study the thermalization velocity and how the parameters affect the phase transition point separating the thermalization process into an accelerating phase and a decelerating phase.
29 pages, 11 figures; V2: references added, version published in JHEP
References in corpus (10)
- Nonlinear Fluid Dynamics from Gravity
- Viscosity, Black Holes, and Quantum Field Theory
- Thermalization of Strongly Coupled Field Theories
- Holographic Evolution of Entanglement Entropy
- Evolution of Holographic Entanglement Entropy after Thermal and Electromagnetic Quenches
- Weak Field Black Hole Formation in Asymptotically AdS Spacetimes
- Viscous plasma evolution from gravity using AdS/CFT
- Shear Viscosity from AdS Born-Infeld Black Holes
- Dynamics of holographic thermalization
- Holographic entanglement entropy in metal/superconductor phase transition with Born-Infeld electrodynamics
Cited by in corpus (5)
- Holographic Thermalization in Charged Dilaton Anti-de Sitter Spacetime
- Holographic thermalization in Gauss-Bonnet gravity with de Sitter boundary
- Born-Infeld electrodynamics in very special relativity
- Expanding plasmas from Anti de Sitter black holes
- Entanglement Entropy of Annulus in Holographic Thermalization