English

Weak Lensing Analysis of SPT selected Galaxy Clusters using Dark Energy Survey Science Verification Data

Cosmology and Nongalactic Astrophysics 2019-01-30 v2

Abstract

We present weak lensing (WL) mass constraints for a sample of massive galaxy clusters detected by the South Pole Telescope (SPT) via the Sunyaev-Zeldovich effect (SZE). We use grizgriz imaging data obtained from the Science Verification (SV) phase of the Dark Energy Survey (DES) to fit the WL shear signal of 33 clusters in the redshift range 0.25z0.80.25 \le z \le 0.8 with NFW profiles and to constrain a four-parameter SPT mass-observable relation. To account for biases in WL masses, we introduce a WL mass to true mass scaling relation described by a mean bias and an intrinsic, log-normal scatter. We allow for correlated scatter within the WL and SZE mass-observable relations and use simulations to constrain priors on nuisance parameters related to bias and scatter from WL. We constrain the normalization of the ζM500\zeta-M_{500} relation, ASZ=12.06.7+2.6A_\mathrm{SZ}=12.0_{-6.7}^{+2.6} when using a prior on the mass slope BSZB_\mathrm{SZ} from the latest SPT cluster cosmology analysis. Without this prior, we recover ASZ=10.85.2+2.3A_\mathrm{SZ}=10.8_{-5.2}^{+2.3} and BSZ=1.300.44+0.22B_\mathrm{SZ}=1.30_{-0.44}^{+0.22}. Results in both cases imply lower cluster masses than measured in previous work with and without WL, although the uncertainties are large. The WL derived value of BSZB_\mathrm{SZ} is 20%\approx 20\% lower than the value preferred by the most recent SPT cluster cosmology analysis. The method demonstrated in this work is designed to constrain cluster masses and cosmological parameters simultaneously and will form the basis for subsequent studies that employ the full SPT cluster sample together with the DES data.

Keywords

Cite

@article{arxiv.1802.04533,
  title  = {Weak Lensing Analysis of SPT selected Galaxy Clusters using Dark Energy Survey Science Verification Data},
  author = {C. Stern and J. P. Dietrich and S. Bocquet and D. Applegate and J. J. Mohr and S. L. Bridle and M. Carrasco Kind and D. Gruen and M. Jarvis and T. Kacprzak and A. Saro and E. Sheldon and M. A. Troxel and J. Zuntz and B. A. Benson and R. Capasso and I. Chiu and S. Desai and D. Rapetti and C. L. Reichardt and B. Saliwanchik and T. Schrabback and N. Gupta and T. M. C. Abbott and F. B. Abdalla and S. Avila and E. Bertin and D. Brooks and D. L. Burke and A. Carnero Rosell and J. Carretero and F. J. Castander and C. B. D'Andrea and L. N. da Costa and C. Davis and J. De Vicente and H. T. Diehl and P. Doel and J. Estrada and A. E. Evrard and B. Flaugher and P. Fosalba and J. Frieman and J. García-Bellido and E. Gaztanaga and R. A. Gruendl and J. Gschwend and G. Gutierrez and D. Hollowood and T. Jeltema and D. Kirk and K. Kuehn and N. Kuropatkin and O. Lahav and M. Lima and M. A. G. Maia and M. March and P. Melchior and F. Menanteau and R. Miquel and A. A. Plazas and A. K. Romer and E. Sanchez and R. Schindler and M. Schubnell and I. Sevilla-Noarbe and M. Smith and R. C. Smith and F. Sobreira and E. Suchyta and M. E. C. Swanson and G. Tarle and A. R. Walker},
  journal= {arXiv preprint arXiv:1802.04533},
  year   = {2019}
}

Comments

Revised version in response to referee report