English

Universality of the halo mass function in screened gravity theories

Cosmology and Nongalactic Astrophysics 2018-12-26 v2 General Relativity and Quantum Cosmology

Abstract

We examine the efficacy of the halo mass function as a probe of f(R)f(R), symmetron and DGP gravity. We develop an excursion-set method to generalise a range of popular HMF fitting functions from GR to screened MG, considering the HMF dependence on the critical density parameter δc\delta_{c}. In particular, we propose a variety of new methods to account for the environmental dependence of chameleon screening and compare their accuracy to existing ones via NN-body data. Finally, using the nested sampling routine MultiNest, we examine two possible interpretations of the MG NN-body results: whether they can be interpreted as Λ\LambdaCDM HMFs and whether the MG HMFs display any universality. We find that the effects of MG can be interpreted as a change in best-fit parameters in the Λ\LambdaCDM HMF---i.e. can be mistaken for GR---for all of the fitting functions. Alternatively, the relation can be inverted to judge the universality of the HMF---not in terms of its purported invariance to zz, H0H_{0}, Ωm\Omega_{m}, ΩΛ\Omega_{\Lambda} as in GR, but its independence on the underlying theory of gravity. Although we found no completely universal HMF, the parameter values did cluster according to the type of screening mechanism. The results suggest that a single, best-fit HMF might be used for each type of screening, independent of the parameters in the MG model. This demonstrates that the additional complexity of the gravitational collapse in screened MG theories cannot always be accounted for using the techniques developed in GR. However, the variations are small enough that it is unnecessary to develop new fitting functions and calibrate them on a case-by-case basis.

Keywords

Cite

@article{arxiv.1804.05387,
  title  = {Universality of the halo mass function in screened gravity theories},
  author = {Francesca von Braun-Bates and Julien Devriendt},
  journal= {arXiv preprint arXiv:1804.05387},
  year   = {2018}
}

Comments

61 pages, 21 figures Replaced introduction. Added background detail on excursion set theory. Shifted technical aspects to appendices. Results unchanged but explained with clearer references to figures