Analytic study of properties of holographic superconductors away from the probe limit
arXiv:1302.1288 · doi:10.1016/j.physletb.2013.06.027
Abstract
In this paper, based on the Sturm-Liouville eigenvalue approach, we analytically investigate the properties of holographic superconductors in the background of pure Einstein and Gauss-Bonnet gravity taking into account the backreaction of the spacetime. Higher value of the backreaction parameter results in a harder condensation to form in both cases. The analytical results obtained are found to be in good agreement with the existing numerical results.
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Cited by in corpus (25)
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- Effects of backreaction and exponential nonlinear electrodynamics on the holographic superconductors
- One-dimensional backreacting holographic superconductors with exponential nonlinear electrodynamics
- Holographic superconductors with Weyl corrections
- Noncommutative effects on holographic superconductors with power Maxwell electrodynamics
- -wave holographic superconductors with massive vector condensate in Born-Infeld electrodynamics
- Holographic free energy and thermodynamic geometry
- Non-linear effects on the holographic free energy and thermodynamic geometry
- Revisiting holographic superconductors with hyperscaling violation
- Effect of magnetic field on holographic insulator/superconductor phase transition in higher dimensional Gauss-Bonnet gravity
- Analytic investigation of rotating holographic superconductors
- Holographic insulator/superconductor phase transition in higher dimensional Gauss-Bonnet gravity
- Backreacting holographic superconductors from the coupling of a scalar field to the Einstein tensor
- Gauss-Bonnet AdS planar and spherical black hole thermodynamics and holography
- Vortices in a rotating holographic superfluid with Lifshitz scaling
- Meissner like effect in holographic superconductors with back reaction
- Noncommutative effects of charged black hole on holographic superconductors
- Analytical study of the holographic superconductor from higher derivative theory
- Novel vortices and the role of complex chemical potential in a rotating holographic superfluid
- Effects of massive gravity on -wave holographic superconductor
- Holographic insulator/superconductor phase transition by matching method and thermodynamic geometry
- Born-Infeld corrections to holographic transport coefficients with spatially modulated chemical potential