English

Large-Scale Structure and Gravitational Waves III: Tidal Effects

Cosmology and Nongalactic Astrophysics 2014-04-23 v3 General Relativity and Quantum Cosmology

Abstract

The leading locally observable effect of a long-wavelength metric perturbation corresponds to a tidal field. We derive the tidal field induced by scalar, vector, and tensor perturbations, and use second order perturbation theory to calculate the effect on the locally measured small-scale density fluctuations. For sub-horizon scalar perturbations, we recover the standard perturbation theory result (F2F_2 kernel). For tensor modes of wavenumber kLk_L, we find that effects persist for kLτ1k_L\tau \gg 1, i.e. even long after the gravitational wave has entered the horizon and redshifted away, i.e. it is a "fossil" effect. We then use these results, combined with the "ruler perturbations" of arXiv:1204.3625, to predict the observed distortion of the small-scale matter correlation function induced by a long-wavelength tensor mode. We also estimate the observed signal in the B mode of the cosmic shear from a gravitational wave background, including both tidal (intrinsic alignment) and projection (lensing) effects. The non-vanishing tidal effect in the kLτ1k_L\tau \gg 1 limit significantly increases the intrinsic alignment contribution to shear B modes, especially at low redshifts z2z \lesssim 2.

Keywords

Cite

@article{arxiv.1312.5616,
  title  = {Large-Scale Structure and Gravitational Waves III: Tidal Effects},
  author = {Fabian Schmidt and Enrico Pajer and Matias Zaldarriaga},
  journal= {arXiv preprint arXiv:1312.5616},
  year   = {2014}
}

Comments

24 pages, 4 figures; v2: added references and corrected typos; v3: corrected factor of 2 in Sec. VI and intrinsic alignment matching, conclusions unchanged

R2 v1 2026-06-22T02:31:45.212Z