2026/02/06 by T. de Haan, M. Archipley, N. Huang +102 · 1 voice
Physics and Astronomy · #Radio Astronomy Observations and Technology #Galaxies: Formation, Evolution, Phenomena #Cosmology and Gravitation Theories
paper · pdf · doi:10.33232/001c.165326
Precise measurements of cosmic microwave background (CMB) polarization require rigorous control of instrumental systematics. For the South Pole Telescope’s third-generation camera (SPT-3G), which observes in three frequency bands roughly centered on 95, 150, and 220 GHz, accurate characterization of the beam—the instrument’s point spread function—is critical for understanding the polarized mm-wave sky. Here, we present direct measurements of SPT-3G’s polarized beam response using observations of 100 bright extragalactic point sources. Previous SPT-3G CMB power spectrum analyses introduced a phenomenological parameter <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"> <mml:msub> <mml:mi>β</mml:mi> <mml:mrow> <mml:mi mathvariant="normal">p</mml:mi> <mml:mi mathvariant="normal">o</mml:mi> <mml:mi mathvariant="normal">l</mml:mi> </mml:mrow> </mml:msub> </mml:math> to describe the degree of polarization preserved in beam sidelobes. These analyses found evidence for significant depolarization driven by the requirement of polarization power spectrum consistency between different frequency bands. Our direct measurements yield <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"> <mml:mrow> <mml:msub> <mml:mi>β</mml:mi> <mml:mrow> <mml:mi mathvariant="normal">p</mml:mi> <mml:mi mathvariant="normal">o</mml:mi> <mml:mi mathvariant="normal">l</mml:mi> </mml:mrow> </mml:msub> <mml:mo>=</mml:mo> <mml:mn>0.89</mml:mn> <mml:mo>±</mml:mo> <mml:mn>0.10</mml:mn> </mml:mrow> </mml:math> at 95 GHz, <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"> <mml:mrow> <mml:mn>1.08</mml:mn> <mml:mo>±</mml:mo> <mml:mn>0.10</mml:mn> </mml:mrow> </mml:math> at 150 GHz, and <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"> <mml:mrow> <mml:mn>0.90</mml:mn> <mml:mo>±</mml:mo> <mml:mn>0.22</mml:mn> </mml:mrow> </mml:math> at 220 GHz, indicating minimal sidelobe depolarization. We validate these results through extensive systematic tests including Bayesian posterior sampling versus frequentist bootstrap resampling, real-space versus Fourier-space analysis, and variations on temperature-to-polarization leakage handling, covariance determination, and source selection. When compared to values inferred from previous cosmological analyses, which favored significant depolarization to resolve inter-frequency power spectrum inconsistencies, we find an effective difference of <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"> <mml:mrow> <mml:mn>1.3</mml:mn> <mml:mi>σ</mml:mi> </mml:mrow> </mml:math> . However, this apparent discrepancy is dependent on the beam modeling, as our point source-based analysis derives much of its constraining power on <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"> <mml:msub> <mml:mi>β</mml:mi> <mml:mrow> <mml:mi mathvariant="normal">p</mml:mi> <mml:mi mathvariant="normal">o</mml:mi> <mml:mi mathvariant="normal">l</mml:mi> </mml:mrow> </mml:msub> </mml:math> from higher multipoles than the power spectrum analysis. These measurements therefore admit three explanations for the frequency-dependent residuals observed in the power spectrum analysis: a statistical fluctuation, the need for more sophisticated polarized beam models, or systematics other than beam depolarization.