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Effective Field Theory of Gravitating Continuum: Solids, Fluids, and Aether Unified

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arxiv 2204.06672 v2 pith:BRDBSC7E submitted 2022-04-13 hep-th astro-ph.COgr-qc

classification hep-thastro-ph.COgr-qc
keywords continuumaethercontinuagravitatingdecompositioneffectivefieldfind
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We investigate the relativistic effective field theory (EFT) describing a non-dissipative gravitating continuum. In addition to ordinary continua, namely solids and fluids, we find an extraordinary more symmetric continuum, aether. In particular, the symmetry of the aether concludes that a homogeneous and isotropic state behaves like a cosmological constant. We formulate the EFT in the unitary/comoving gauge in which the dynamical degrees of freedom of the continuum (phonons) are eaten by the spacetime metric. This gauge choice, which is interpreted as the Lagrangian description in hydrodynamics, offers a neat geometrical understanding of continua. We examine a thread-based spacetime decomposition with respect to the four-velocity of the continuum which is different from the foliation-based Arnowitt-Deser-Misner one. Our thread-based decomposition respects the symmetries of the continua and, therefore, makes it possible to systematically find invariant building blocks of the EFT for each continuum even at higher orders in the derivative expansion. We also discuss the linear dynamics of the system and show that both gravitons and phonons acquire "masses" in a gravitating background.

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

  1. Gravitational Waves as Thermodynamic Shear Excitations in Scalar-Tensor Gravity

    gr-qc 2026-07 accept novelty 6.0 of 10

    In scalar-tensor gravity, a transverse-traceless gravitational wave performs gauge-invariant shear work on the scalar-field fluid, with power = (KT/4) times the squared strain rate.

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