Rotation and Anisotropic Scaling in Axionic Holographic Superconductors: AdS4 versus Lifshitz5
Moisés Bravo-Gaete
Abstract
An outstanding question in holographic superconductivity is how rotation and non-relativistic scaling symmetries compete to modify the onset of condensation. We address this by comparing the probe superconductor sectors of two exact rotating axionic black holes: a four-dimensional asymptotically anti-de Sitter solution dressed by a non-minimally coupled scalar, and a five-dimensional asymptotically Lifshitz solution with z ∈ (2,3). Writing both metrics in a common stationary form yields a master scalar equation in which rotation enters through the co-rotating potential At-NxAx. This equation explains why the temporal and spatial components of the probe gauge field cannot be treated independently. The numerical profiles reported in [1,2] indicate that the correlated deformation associated with rotation reduces the condensate amplitude in both backgrounds, whereas increasing the dynamical exponent at fixed J enhances the Lifshitz condensate. Since the parameters α and J also modify the matter fields supporting the corresponding exact geometries, these trends should be interpreted as properties of complete correlated families rather than as universal effects of mechanical rotation alone.
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