Galaxy Clustering in 3D and Modified Gravity Theories
Dipak Munshi, Geraint Pratten, Patrick Valageas, Peter Coles, Philippe, Brax

TL;DR
This paper models 3D galaxy clustering in modified gravity theories using a spherical Fourier-Bessel basis, assessing how well future surveys can constrain gravity parameters through power spectrum analysis.
Contribution
It introduces a non-linear 3D power spectrum model for MG theories in redshift space and evaluates their detectability with upcoming spectroscopic surveys.
Findings
Lower-order multipoles can constrain $f_{R_0}$ to $2\times 10^{-5}$ at 3σ confidence.
Including higher multipoles improves constraints and can rival solar system tests.
Constraints on Dilaton model parameters are derived using a tomographic parameterization.
Abstract
We study Modified Gravity (MG) theories by modelling the redshifted matter power spectrum in a spherical Fourier-Bessel (sFB) basis. We use a fully non-linear description of the real-space matter power-spectrum and include the lowest-order redshift-space correction (Kaiser effect), taking into account some additional non-linear contributions. Ignoring relativistic corrections, which are not expected to play an important role for a shallow survey, we analyse two different modified gravity scenarios, namely the generalised Dilaton scalar-tensor theories and the models in the large curvature regime. We compute the 3D power spectrum for various such MG theories with and without redshift space distortions, assuming precise knowledge of background cosmological parameters. Using an all-sky spectroscopic survey with Gaussian selection function…
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