English

Foreground Separation and Constraints on Primordial Gravitational Waves with the PICO Space Mission

Cosmology and Nongalactic Astrophysics 2023-06-21 v2 Instrumentation and Methods for Astrophysics

Abstract

PICO is a concept for a NASA probe-scale mission aiming to detect or constrain the tensor to scalar ratio rr, a parameter that quantifies the amplitude of inflationary gravity waves. We carry out map-based component separation on simulations with five foreground models and input rr values rin=0r_{in}=0 and rin=0.003r_{in} = 0.003. We forecast rr determinations using a Gaussian likelihood assuming either no delensing or a residual lensing factor AlensA_{\rm lens} = 27%. By implementing the first full-sky, post component-separation, map-domain delensing, we show that PICO should be able to achieve AlensA_{\rm lens} = 22% - 24%. For four of the five foreground models we find that PICO would be able to set the constraints r<1.3×104\mboxtor<2.7×104(95%)r < 1.3 \times 10^{-4} \,\, \mbox{to} \,\, r <2.7 \times 10^{-4}\, (95\%) if rin=0r_{in}=0, the strongest constraints of any foreseeable instrument. For these models, r=0.003r=0.003 is recovered with confidence levels between 18σ18\sigma and 27σ27\sigma. We find weaker, and in some cases significantly biased, upper limits when removing few low or high frequency bands. The fifth model gives a 3σ3\sigma detection when rin=0r_{in}=0 and a 3σ3\sigma bias with rin=0.003r_{in} = 0.003. However, by correlating rr determinations from many small 2.5% sky areas with the mission's 555 GHz data we identify and mitigate the bias. This analysis underscores the importance of large sky coverage. We show that when only low multipoles 12\ell \leq 12 are used, the non-Gaussian shape of the true likelihood gives uncertainties that are on average 30% larger than a Gaussian approximation.

Keywords

Cite

@article{arxiv.2211.14342,
  title  = {Foreground Separation and Constraints on Primordial Gravitational Waves with the PICO Space Mission},
  author = {Ragnhild Aurlien and Mathieu Remazeilles and Sebastian Belkner and Julien Carron and Jacques Delabrouille and Hans Kristian Eriksen and Raphael Flauger and Unni Fuskeland and Mathew Galloway and Krzysztof M. Gorski and Shaul Hanany and Brandon S. Hensley and J. Colin Hill and Charles R. Lawrence and Alexander van Engelen and Ingunn Kathrine Wehus},
  journal= {arXiv preprint arXiv:2211.14342},
  year   = {2023}
}

Comments

34 pages, 13 figures, published in JCAP