Coexistence of two vector order parameters: a holographic model for ferromagnetic superconductivity
arXiv:1309.5093 · doi:10.1007/JHEP01(2014)054
Abstract
We study a generalization of the standard holographic p-wave superconductor featuring two interacting vector order parameters. Basing our argument on the symmetry and linear response properties of the model, we propose it as a holographic effective theory describing a strongly coupled ferromagnetic superconductor. We show that the two order parameters undergo concomitant condensations as a manifestation of an intrinsically interlaced electric/magnetic dynamics. Such intertwined dynamics is confirmed by the study of the transport properties. We characterize thoroughly the equilibrium and the linear response (i.e. optical conductivity and magnetic susceptibility) of the model at hand by means of a probe approximation analysis. Some insight about the effects of backreaction in the normal phase can be gained by analogy with the s-wave unbalanced holographic superconductor.
45 pages, 19 figures
References in corpus (17)
- Building an AdS/CFT superconductor
- Minkowski-space correlators in AdS/CFT correspondence: recipe and applications
- Lectures on Holographic Superfluidity and Superconductivity
- Superconductivity on the border of weak itinerant ferromagnetism in UCoGe
- Quantum critical transport, duality, and M-theory
- Boundary Conditions and Dualities: Vector Fields in AdS/CFT
- Hydrodynamics of Holographic Superconductors
- Gauge gravity duality for d-wave superconductors: prospects and challenges
- Quasinormal modes of plane-symmetric black holes according to the AdS/CFT correspondence
- Competing Holographic Orders
- Competition between the s-wave and p-wave superconductivity phases in a holographic model
- Competition and Coexistence of Order Parameters in Holographic Multi-Band Superconductors
- On the theory of superconductivity in ferromagnetic superconductors with triplet pairing
- Properties of Ferromagnetic Superconductors
- Holographic s+p Superconductors
- Minimal Model for an Unbalanced Holographic Superconductor
- Coexistence of ferromagnetism and superconductivity: the role of kinetic interactions, kinetic correlations, and external pressure
Cited by in corpus (31)
- Holographic Polarons, the Metal-Insulator Transition and Massive Gravity
- Introduction to Holographic Superconductor Models
- Holographic Competition of Phases and Superconductivity
- Phase transitions in a holographic s+p model with backreaction
- Chasing the cuprates with dilatonic dyons
- Competing p-wave orders
- Coexistence and competition of ferromagnetism and p-wave superconductivity in holographic model
- P-T phase diagram of a holographic s+p model from Gauss-Bonnet gravity
- P-wave holographic superconductor/insulator phase transitions affected by dark matter sector
- Introductory notes on holographic superconductors
- Phase Diagram of a Holographic Superconductor Model with s-wave and d-wave
- Condensate flow in holographic models in the presence of dark matter
- Split degenerate states and stable p+ip phases from holography
- Competing s-wave orders from Einstein-Gauss-Bonnet gravity
- Holographic model of hybrid and coexisting s-wave and p-wave Josephson junction
- Spontaneous current in an holographic s+p superfluid
- Analytical coexistence of s, p, s + p phases of a holographic superconductor
- Two interacting current model of holographic Dirac fluid in graphene
- Competition between s-wave order and d-wave order in holographic superconductors
- Holographic vortices in the presence of dark matter sector
- Gauss-Bonnet holographic superconductors in exponential nonlinear electrodynamics
- Holographic s-wave and p-wave Josephson junction with backreaction
- Holographic quantum phase transitions and interacting bulk scalars
- Viscosity bound for anisotropic superfluids with dark matter sector
- Doped Holographic Superconductor in an External Magnetic Field
- Conductivity bound of the strongly interacting and disordered graphene from gauge/gravity duality
- Anomalous Hall conductivity of the holographic Dirac semimetals
- Massive -form field and holographic ferromagnetic phase transition
- Doped holographic fermionic system
- DC conductivities and Stokes flows in Dirac semimetals
- Chaos in balanced and unbalanced holographic s+p superconductors