Imprints of primordial non-Gaussianities on large-scale structure: Scale-dependent bias and abundance of virialized objects
University of Toronto · Canadian Institute for Theoretical Astrophysics · +2 more institutions
Abstract
We study the effect of primordial non-Gaussianity on large-scale structure, focusing upon the most massive virialized objects. Using analytic arguments and $N$-body simulations, we calculate the mass function and clustering of dark matter halos across a range of redshifts and levels of non-Gaussianity. We propose a simple fitting function for the mass function valid across the entire range of our simulations. We find pronounced effects of non-Gaussianity on the clustering of dark matter halos, leading to strongly scale-dependent bias. This suggests that the large-scale clustering of rare objects may provide a sensitive probe of primordial non-Gaussianity. We very roughly estimate that upcoming surveys can…
Citation impact
- FWCI
- 37.60
- Percentile
- 100%
- References
- 122
Authors
4- NDNeal DalalCorresponding
University of Toronto, Canadian Institute for Theoretical Astrophysics
- ODOlivier Doré
University of Toronto, Canadian Institute for Theoretical Astrophysics
- DHDragan Huterer
University of Michigan–Ann Arbor, University of Chicago
- ASAlexander Shirokov
Canadian Institute for Theoretical Astrophysics, University of Toronto
Topics & keywords
- Non-Gaussianity
- Physics
- Dark matter
- Astrophysics
- Halo
- Cluster analysis
- Redshift
- Halo effect