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Screening of Coulomb interactions in Holography

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arxiv 1811.11795 v3 pith:C2LOKOEQ submitted 2018-11-28 cond-mat.str-el hep-th

classification cond-mat.str-elhep-th
keywords coulombtheoryboundaryconductivitydeformationinteractioninteractionslayered
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We introduce Coulomb interactions in the holographic description of strongly interacting systems, by performing a (current-current) double-trace deformation of the boundary theory. In the theory dual to a Reissner-Nordstr\"om background, this deformation leads to gapped plasmon modes in the density-density response, as expected from conventional RPA calculations. We further show that by introducing a $(d + 1)$-dimensional Coulomb interaction in a boundary theory in $d$ spacetime dimensions, we recover plasmon modes whose dispersion is proportional to $\sqrt{|\mathbf{k}|}$, as observed for example in graphene layers. Moreover, motivated by recent experimental results in layered cuprate high-temperature superconductors, we present a toy model for a layered system consisting of an infinite stack of (spatially) two-dimensional layers, that are coupled only by the long-range Coulomb interaction. This leads to low-energy `acoustic plasmons'. Finally, we compute the optical conductivity of the deformed theory in $d = 3 + 1$, where a logarithmic correction is present and we show how this can be related to the conductivity measured in Dirac and Weyl semimetals.

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Cited by 2 Pith papers

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    hep-th 2019-09 conditional novelty 6.0 of 10

    A top-down holographic D3-D5-D7 construction yields anisotropic thermodynamics and distinct in-plane and off-plane sound and diffusion modes for strongly coupled layered matter with fundamental flavors.

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