Calibrating baryonic feedback with weak lensing and fast radio bursts
Robert Reischke, Dennis Neumann, Klara Antonia Bertmann, Steffen Hagstotz, Hendrik Hildebrandt

TL;DR
This paper proposes using Fast Radio Bursts (FRBs) combined with weak lensing data to better constrain baryonic feedback effects on the matter distribution, significantly improving parameter constraints for upcoming large-scale structure surveys.
Contribution
It introduces a novel method of combining FRB dispersion measures with weak lensing to break degeneracies in baryonic feedback modeling, enhancing the precision of cosmological parameter estimates.
Findings
Approximately 50,000 FRBs can significantly improve feedback constraints.
The combined method tightens feedback constraints by a factor of five.
It also improves neutrino mass estimates by 1.5 times.
Abstract
One of the key limitations of large-scale structure surveys of the current and future generation, such as Euclid, LSST-Rubin or Roman, is the influence of feedback processes on the distribution of matter in the Universe. This effect, called baryonic feedback, modifies the matter power spectrum on non-linear scales much stronger than any cosmological parameter of interest. Constraining these modifications is therefore key to unlocking the full potential of the upcoming surveys, and we propose to do so with the help of Fast Radio Bursts (FRBs). FRBs are short, astrophysical radio transients of extragalactic origin. Their burst signal is dispersed by the free electrons in the large-scale structure, leading to delayed arrival times at different frequencies characterised by the dispersion measure (DM). Since the dispersion measure is sensitive to the integrated line-of-sight electron…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Radio Astronomy Observations and Technology · Cosmology and Gravitation Theories
