Cosmological constraints from thermal Sunyaev-Zeldovich power spectrum revisited

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Abstract

Thermal Sunyaev-Zeldovich (tSZ) power spectrum is one of the most sensitive methods to constrain cosmological parameters, scaling as the amplitude σ8 8 . It is determined by the integral over the halo mass function multiplied by the total pressure content of clusters and further convolved by the cluster gas pressure profile. It has been shown that various feedback effects can change significantly the pressure profile, possibly even pushing the gas out to the virial radius and beyond, strongly affecting the tSZ power spectrum at high l. Energetics arguments and SZ-halo mass scaling relations suggest feedback is unlikely to significantly change the total pressure content, making the low l tSZ power spectrum more robust against feedback effects. Furthermore, the separation between the cosmic infrared background and tSZ is more reliable at low l. Low l modes are however probing very small volumes, giving rise to very large non-Gaussian sampling variance errors. By computing the trispectrum contribution, we identify 90 < l < 350 as the minimum variance scale where the combined error is minimized. We find constraints on σ8 by marginalizing over the feedback nuisance parameter, obtaining σ8 = 0.820+0.021 -0.009 (Ωm/0.31)0.4 when fixing other parameters to Planck cosmology values. Our results suggest that it is possible to obtain competitive cosmological constraints from tSZ without cluster redshift information and that the current tSZ power spectrum shows no evidence for a low amplitude of σ8.

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APA

Horowitz, B., & Seljak, U. (2017). Cosmological constraints from thermal Sunyaev-Zeldovich power spectrum revisited. Monthly Notices of the Royal Astronomical Society, 469(1), 394–400. https://doi.org/10.1093/mnras/stx766

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