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Relaxed hydrodynamic theory of electrically driven non-equilibrium steady states

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arxiv 2404.05568 v2 pith:RNFRDIVI submitted 2024-04-08 cond-mat.stat-mech cond-mat.str-elhep-th

Relaxed hydrodynamic theory of electrically driven non-equilibrium steady states

classification cond-mat.stat-mech cond-mat.str-elhep-th
keywords non-equilibriumhydrodynamicstatessteadydescriptiondrivenelectricallyhydrodynamics
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The capability of hydrodynamics to accurately describe slow and long-wavelength fluctuations around non-equilibrium steady states (NESS), characterized by a stationary flow of energy or matter in the presence of a driving force, remains an open question. In this study, we explicitly construct a hydrodynamic description of electrically driven non-equilibrium charged steady states \new{in the limit in which the relaxation of the first non-hydrodynamic excitation is parametrically slow}. Our approach involves introducing gapped modes and extending the effective description into a relaxed hydrodynamic theory (RHT). Leveraging the gauge-gravity duality as a tool for controlled computations within non-equilibrium systems, we establish an ultraviolet complete model for these NESS that confirms the validity of our RHT. In summary, our findings provide a concrete realization of the validity of hydrodynamics beyond thermal equilibrium, offering valuable insights into the dynamics of non-equilibrium systems.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Nonequilibrium steady states in driven holographic Weyl semi-metals

    hep-th 2026-02 conditional novelty 6.0

    A driven holographic Weyl semimetal supports a stable nonequilibrium steady state, becomes superharmonic and then chaotic at stronger driving, and exhibits strong-coupling chiral pumping in a magnetic field.

  2. Holographic D-brane constructions with dynamical gauge fields

    hep-th 2025-06 unverdicted novelty 6.0

    Equips bottom-up holographic D-brane models with dynamical boundary gauge fields and shows that quasinormal mode dispersion relations in equilibrium and nonequilibrium states match hydrodynamics with dynamical U(1) symmetry.