Constraints on Cosmology from the Cosmic Microwave Background Power Spectrum of the 2500 ${\rm deg}^2$ SPT-SZ Survey
Z. Hou, C. L. Reichardt, K. T. Story, B. Follin, R. Keisler, K. A., Aird, B. A. Benson, L. E. Bleem, J. E. Carlstrom, C. L. Chang, H-M. Cho, T., M. Crawford, A. T. Crites, T. de Haan, R. de Putter, M. A. Dobbs, S., Dodelson, J. Dudley, E. M. George, N. W. Halverson, G. P. Holder

TL;DR
This paper analyzes CMB data from the SPT-SZ survey combined with other cosmological measurements to test extensions of the standard $$CDM model, finding mild evidence for running spectral index and neutrino properties.
Contribution
It provides new constraints on cosmological parameters, especially on the running index, effective number of neutrino species, and neutrino mass, using combined CMB, BAO, $H_0$, and galaxy cluster data.
Findings
Weak support for physics beyond $$CDM from CMB alone.
Preference for negative running of the spectral index, nrun.
Detection of non-zero neutrino mass at 3$$ significance.
Abstract
We explore extensions to the CDM cosmology using measurements of the cosmic microwave background (CMB) from the recent SPT-SZ survey, along with data from WMAP7 and measurements of and BAO. We check for consistency within CDM between these datasets, and find some tension. The CMB alone gives weak support to physics beyond CDM, due to a slight trend relative to CDM of decreasing power towards smaller angular scales. While it may be due to statistical fluctuation, this trend could also be explained by several extensions. We consider running index (nrun), as well as two extensions that modify the damping tail power (the primordial helium abundance and the effective number of neutrino species ) and one that modifies the large-scale power due to the ISW effect (the sum of neutrino masses ). These extensions have similar…
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