Cosmological Constraints from Galaxy Clusters in the 2500 square-degree SPT-SZ Survey
T. de Haan, B. A. Benson, L. E. Bleem, S. W. Allen, D. E. Applegate,, M. L. N. Ashby, M. Bautz, M. Bayliss, S. Bocquet, M. Brodwin, J. E., Carlstrom, C. L. Chang, I. Chiu, H-M. Cho, A. Clocchiatti, T. M. Crawford, A., T. Crites, S. Desai, J. P. Dietrich, M. A. Dobbs

TL;DR
This paper uses galaxy clusters detected via the Sunyaev-Zel'dovich effect in the SPT-SZ survey to derive cosmological constraints, including parameters like sigma_8, Omega_m, neutrino mass, and dark energy equation of state, consistent with other measurements.
Contribution
It provides new cosmological constraints from the largest SZ-selected galaxy cluster sample, incorporating multi-wavelength data and exploring neutrino mass and dark energy parameters.
Findings
Cluster data yields sigma_8 = 0.797+-0.031
Omega_m = 0.289+-0.042
Neutrino mass mnu = 0.14+-0.08 eV
Abstract
(abridged) We present cosmological constraints obtained from galaxy clusters identified by their Sunyaev-Zel'dovich effect signature in the 2500 square degree South Pole Telescope Sunyaev Zel'dovich survey. We consider the 377 cluster candidates identified at z>0.25 with a detection significance greater than five, corresponding to the 95% purity threshold for the survey. We compute constraints on cosmological models using the measured cluster abundance as a function of mass and redshift. We include additional constraints from multi-wavelength observations, including Chandra X-ray data for 82 clusters and a weak lensing-based prior on the normalization of the mass-observable scaling relations. Assuming a LCDM cosmology, where the species-summed neutrino mass has the minimum allowed value (mnu = 0.06 eV) from neutrino oscillation experiments, we combine the cluster data with a prior on H0…
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