Entanglement Entropy in Holographic P-Wave Superconductor/Insulator Model
arXiv:1303.4828 · doi:10.1007/JHEP06(2013)063
Abstract
We continue our study of entanglement entropy in the holographic superconducting phase transitions. In this paper we consider the holographic p-wave superconductor/insulator model, where as the back reaction increases, the transition is changed from second order to first order. We find that unlike the s-wave case, there is no additional first order transition in the superconducting phase. We calculate the entanglement entropy for two strip geometries. One is parallel to the super current, and the other is orthogonal to the super current. In both cases, we find that the entanglement entropy monotonically increases with respect to the chemical potential.
v2: title changed, discussions improved, references added, accepted by JHEP
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- Holographic entanglement entropy in general holographic superconductor models
- p-wave Holographic Superconductors from Born-Infeld Black Holes
- Towards Complete Phase Diagrams of a Holographic P-wave Superconductor Model
- Entanglement Entropy as a Probe of the Proximity Effect in Holographic Superconductors
- Very General Holographic Superconductors and Entanglement Thermodynamics
- Vector Condensate and AdS Soliton Instability Induced by a Magnetic Field
- Holographic entanglement density for spontaneous symmetry breaking
- Holographic insulator/superconductor phase transitions with excited states
- Holographic insulator/superconductor transition with exponential nonlinear electrodynamics probed by entanglement entropy
- Holographic entanglement entropy in imbalanced superconductors
- Gauss-Bonnet entropy and thermal dynamics of RN-AdS black holes
- Universality of critical magnetic field in holographic superconductor