4.4 Article

Quasi-normal modes of dyonic black holes and magneto-hydrodynamics

Journal

JOURNAL OF HIGH ENERGY PHYSICS
Volume -, Issue 7, Pages -

Publisher

SPRINGER
DOI: 10.1007/JHEP07(2022)065

Keywords

Gauge-Gravity Correspondence; Holography and Condensed Matter Physics (AdS/CMT)

Funding

  1. National Key R&D Program of China [2018FYA0305800]
  2. National Natural Science Foundation of China [12035016]
  3. Strategic Priority Research Program of Chinese Academy of Sciences [XDB28000000]
  4. Basic Science Research Program through the National Research Foundation of Korea (NRF) - Ministry of Science, ICT & Future Planning [NRF-2021R1A2C1006791]
  5. GIST Research Institute(GRI) grant
  6. AI-based GIST Research Scientist Project grant - GIST in 2022

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In this study, we revisit the magneto-hydrodynamics in (2+1) dimensions and confirm its consistency with the quasi-normal modes of the (3+1) dimensional dyonic black holes with finite density, magnetic field, and wave vector. We investigate all possible modes and their interplay, and perform a complete analysis with corrections for some prefactors in the literature. By identifying the independent fluctuation variables of the dyonic black holes, we compute the quasi-normal modes and study a transport property, the diffusion constant, which saturates the lower bound at low temperature.
We revisit the magneto-hydrodynamics in (2+1) dimensions and confirm that it is consistent with the quasi-normal modes of the (3+1) dimensional dyonic black holes in the most general set-up with finite density, magnetic field and wave vector. We investigate all possible modes (sound, shear, diffusion, cyclotron etc.) and their interplay. For the magneto-hydrodynamics we perform a complete and detailed analysis correcting some prefactors in the literature, which is important for the comparison with quasi-normal modes. For the quasi-normal mode computations in holography we identify the independent fluctuation variables of the dyonic black holes, which is nontrivial at finite density and magnetic field. As an application of the quasi-normal modes of the dyonic black holes we investigate a transport property, the diffusion constant. We find that the diffusion constant at finite density and magnetic field saturates the lower bound at low temperature. We show that this bound can be understood from the pole-skipping point.

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