3D Weak Lensing: Modified Theories of Gravity
Abstract
Weak lensing (WL) promises to be a particularly sensitive probe of both the growth of large scale structure (LSS) as well as the fundamental relation between matter density perturbations and metric perturbations, thus providing a powerful tool with which we may constrain modified theories of gravity (MG) on cosmological scales. Future deep, wide-field WL surveys will provide an unprecedented opportunity to constrain deviations from General Relativity (GR). Employing a three-dimensional (3D) analysis based on the spherical Fourier-Bessel (sFB) expansion, we investigate the extent to which MG theories will be constrained by a typical 3D WL survey configuration including noise from the intrinsic ellipticity distribution of source galaxies. Here we focus on two classes of screened theories of gravity: i) chameleon models and ii) environmentally dependent dilaton models. We use one-loop perturbation theory combined with halo models in order to accurately model the evolution of matter power-spectrum with redshift in these theories. Using a Fisher information matrix based approach, we show that for an all-sky spectroscopic survey, the parameter can be constrained in the range for with a 3 confidence level. This can be achieved by using relatively low order angular harmonics . Including higher order harmonics can further tighten the constraints, making them comparable to current solar-system constraints. We also employ a Principal Component Analysis (PCA) in order to study the parameter degeneracies in the MG parameters. Our results can trivially be extended to other MG theories, such as the K-mouflage models. The confusion from intrinsic ellipticity correlation and modification of the matter power-spectrum at small scale due to feedback mechanisms is briefly discussed.
Cite
@article{arxiv.1602.06711,
title = {3D Weak Lensing: Modified Theories of Gravity},
author = {Geraint Pratten and Dipak Munshi and Patrick Valageas and Philippe Brax},
journal= {arXiv preprint arXiv:1602.06711},
year = {2016}
}
Comments
25 pages. 10 Figures. 4 Tables. Submitted to PRD