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April 28, 2026The Astrophysical Journal Letters1 citationsOpen Access

Measurement of the Full Shape of the Thermal Sunyaev–Zel’dovich Power Spectrum from the South Pole Telescope and Herschel–SPIRE Observations

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SRS. RaghunathanPAP AdeDAD. Anbajagane

Key Points

  • This work aims to measure the full shape of the thermal Sunyaev–Zel’dovich power spectrum using CMB data.
  • Analyzed data from the South Pole Telescope over a 100 deg² field using multiple bands (95, 150, 220, 600, 857 GHz).
  • Produced various Compton-y maps using linear combination techniques, including minimum-variance and foreground-minimized maps.
  • Measured auto- and cross-power spectra in the range ℓ ∈ [500, 5000].
  • Final tSZ power spectrum measured at 9.3 σ with both minimum-variance and CIB-min maps.
  • Found 3.1 σ evidence for a positive correlation between tSZ and CIB on large scales, which decreases for ℓ > 2500.
  • Results are consistent with previous CMB surveys, providing deeper tSZ maps that refine astrophysical models.

Abstract

Abstract We present a measurement of the full shape of the power spectrum of the thermal Sunyaev–Zel’dovich (tSZ) effect down to arcminute scales using cosmic microwave background (CMB) data from the South Pole Telescope (SPT) over a roughly 100 deg 2 field. The analysis incorporates data from the 2019–2020 seasons of the SPT-3G survey in bands centered at 95, 150, and 220 GHz; from the full SPTpol dataset at 150 GHz; and from the Herschel–SPIRE survey in bands centered at 600 and 857 GHz. We combine data from all the above bands using linear combination (LC) techniques to produce a tSZ or Compton- y map. We modify the LC weights to produce multiple versions of the Compton- y map, including minimum-variance (MV) and foreground-minimized (-min) maps. We measure the auto- and cross-power spectra of a subset of these maps in the range ℓ ∈ 500, 5000. While this power spectrum includes contributions from signals other than tSZ, we present numerous checks to show that the most challenging foreground signal, the cosmic infrared background (CIB), is much lower than the desired tSZ signal in the scales of interest in this work. The final tSZ power spectrum is measured at 9.3 σ with both the MV and CIB-min maps. Our results are consistent with those reported in other CMB surveys across the literature. Using the difference in the tSZ power spectrum from the MV and CIB-min maps, we reconstruct the scale-dependent tSZ–CIB cross correlation ρ ℓ tSZ × CIB , finding 3.1 σ evidence for a nonzero correlation coefficient that is positive on large scales and approaches zero for ℓ > 2500. This result represents the deepest tSZ maps ever produced and provides new constraints that can help refine astrophysical feedback mechanisms and models of the intracluster medium.

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Cite This Study

Raghunathan et al. (2026) studied this question.

synapsesocial.com/papers/69f04d9f727298f751e71f21https://doi.org/10.3847/2041-8213/ae5c07
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