English

An Optical Observational Cluster Mass Function at $z\sim1$ with the ORELSE Survey

Cosmology and Nongalactic Astrophysics 2021-02-17 v1

Abstract

We present a new mass function of galaxy clusters and groups using optical/near-infrared wavelength spectroscopic and photometric data from the Observations of Redshift Evolution in Large-Scale Environments (ORELSE) survey. At z1z\sim1, cluster mass function studies are rare regardless of wavelength and have never been attempted from an optical/near-infrared perspective. This work serves as a proof of concept that z1z\sim1 cluster mass functions are achievable without supplemental X-ray or Sunyaev-Zel'dovich (SZ) data. Measurements of the cluster mass function provide important contraints on cosmological parameters and are complementary to other probes. With ORELSE, a new cluster finding technique based on Voronoi tessellation Monte-Carlo (VMC) mapping, and rigorous purity and completeness testing, we have obtained \sim240 galaxy overdensity candidates in the redshift range 0.55<z<1.370.55<z<1.37 at a mass range of 13.6<log(M/M)<14.813.6<\log(M/M_{\odot})<14.8. This mass range is comparable to existing optical cluster mass function studies for the local universe. Our candidate numbers vary based on the choice of multiple input parameters related to detection and characterization in our cluster finding algorithm, which we incorporated into the mass function analysis through a Monte-Carlo scheme. We find cosmological constraints on the matter density of Ωm=0.2500.099+0.104\Omega_{m} = 0.250^{+0.104}_{-0.099} and on the amplitude of fluctuations of σ8=1.1500.163+0.260\sigma_{8} = 1.150^{+0.260}_{-0.163}. While our Ωm\Omega_{m} value is close to concordance, our σ8\sigma_{8} value is 2σ\sim2\sigma higher because of the inflated observed number densities compared to theoretical mass function models owing to how our survey targeted overdense regions. With Euclid and several other large, unbiased optical surveys on the horizon, VMC mapping will enable optical/NIR cluster cosmology at redshifts much higher than what has been possible before.

Keywords

Cite

@article{arxiv.2101.02215,
  title  = {An Optical Observational Cluster Mass Function at $z\sim1$ with the ORELSE Survey},
  author = {D. Hung and B. C. Lemaux and R. R. Gal and A. R. Tomczak and L. M. Lubin and O. Cucciati and D. Pelliccia and L. Shen and O. Le Fèvre and G. Zamorani and P-F. Wu and D. D. Kocevski and C. D. Fassnacht and G. K. Squires},
  journal= {arXiv preprint arXiv:2101.02215},
  year   = {2021}
}

Comments

13 pages, 8 figures, submitted to MNRAS