Measurements of the Temperature and E-Mode Polarization of the CMB from 500 Square Degrees of SPTpol Data
J. W. Henning, J.T. Sayre, C. L. Reichardt, P. A. R. Ade, A. J., Anderson, J. E. Austermann, J. A. Beall, A. N. Bender, B. A. Benson, L. E., Bleem, J. E. Carlstrom, C. L. Chang, H. C. Chiang, H-M. Cho, R. Citron, C., Corbett Moran, T. M. Crawford, A. T. Crites, T. de Haan

TL;DR
This paper reports precise measurements of the CMB's E-mode polarization and temperature-E-mode cross-power spectra over 500 square degrees, detecting multiple acoustic peaks and providing new constraints on cosmological parameters within the DM model.
Contribution
It presents the most sensitive measurements to date of the CMB EE and TE spectra at high multipoles over a large sky area, improving constraints on cosmological models.
Findings
Detection of nine acoustic peaks in EE spectrum
Upper limit on residual polarized point-source power
Preference for higher H0 and lower in extended DM fits
Abstract
We present measurements of the -mode polarization angular auto-power spectrum () and temperature--mode cross-power spectrum () of the cosmic microwave background (CMB) using 150 GHz data from three seasons of SPTpol observations. We report the power spectra over the spherical harmonic multipole range , and detect nine acoustic peaks in the spectrum with high signal-to-noise ratio. These measurements are the most sensitive to date of the and power spectra at and , respectively. The observations cover 500 deg, a fivefold increase in area compared to previous SPTpol analyses, which increases our sensitivity to the photon diffusion damping tail of the CMB power spectra enabling tighter constraints on \LCDM model extensions. After masking all sources with unpolarized flux mJy we place a 95% confidence…
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