Abstract
We present a sample-variance-limited measurement of the temperature power spectrum (πβ’π) of the cosmic microwave background using observations of a βΌ1500ββdeg2 field made by the SPT-3G in 2018. We report multifrequency power spectrum measurements at 95, 150, and 220 GHz covering the angular multipole range 750 β€β <3000. We combine this πβ’π measurement with the published polarization power spectrum measurements from the 2018 observing season and update their associated covariance matrix to complete the SPT-3G 2018 πβ’π/πβ’πΈ/πΈβ’πΈ dataset. This is the first analysis to present cosmological constraints from SPT πβ’π, πβ’πΈ, and πΈβ’πΈ power spectrum measurements jointly. We blind the cosmological results and subject the dataset to a series of consistency tests at the power spectrum and parameter level. We find excellent agreement between frequencies and spectrum types and our results are robust to the modeling of astrophysical foregrounds. We report results for Ξβ’CDM and a series of extensions, drawing on the following parameters: the amplitude of the gravitational lensing effect on primary power spectra π΄L, the effective number of neutrino species πeff, the primordial helium abundance πP, and the baryon clumping factor due to primordial magnetic fields π. We find that the SPT-3G 2018 πβ’π/πβ’πΈ/πΈβ’πΈ data are well fit by Ξβ’CDM with a probability to exceed of 15%. For Ξβ’CDM, we constrain the expansion rate today to π»0 =68.3 Β±1.5ββkmβsβ1βMpcβ1 and the combined structure growth parameter to π8 =0.797 Β±0.042. The SPT-based results are effectively independent of Planck, and the cosmological parameter constraints from either dataset are within <1β’π of each other. The addition of temperature data to the SPT-3G πβ’πΈ/πΈβ’πΈ power spectra improves constraints by 8β27% for each of the Ξβ’CDM cosmological parameters. When additionally fitting π΄L, πeff, or πeff +πP, the posteriors of these parameters tighten by 5β24%. In the case of primordial magnetic fields, complete πβ’π/πβ’πΈ/πΈβ’πΈ power spectrum measurements are necessary to break the degeneracy between π and ππ , the spectral index of primordial density perturbations. We report a 95% confidence upper limit from SPT-3G data of π <1.0. The cosmological constraints in this work are the tightest from SPT primary power spectrum measurements to date and the analysis forms a new framework for future SPT analyses.
| Original language | English |
|---|---|
| Article number | 023510 |
| Journal | Physical Review D |
| Volume | 108 |
| DOIs | |
| Publication status | Published - 13 Jul 2023 |
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