Signatures of Suppressed Matter Clustering revealed by Fast Radio Bursts
Kritti Sharma, Elisabeth Krause, Vikram Ravi, Liam Connor, Dhayaa Anbajagane, and Pranjal R. S

TL;DR
This paper demonstrates that fast radio bursts (FRBs) can effectively measure baryon density fluctuations, revealing suppressed matter clustering due to feedback processes, and complement existing cosmological probes.
Contribution
It introduces a novel use of FRB dispersion measures to directly quantify feedback effects on matter clustering at intermediate redshifts.
Findings
FRB data reduces posterior variance in matter power spectrum by a factor of 8 at k ~ 1 h/Mpc.
Constraints from FRBs are comparable to other baryon tracers but probe a different redshift range.
Excludes extreme feedback scenarios at ~2σ confidence, confirming FRBs as a valuable feedback probe.
Abstract
Complex astrophysical processes regulate the growth of galaxies by injecting energy and momentum into their surroundings, redistributing baryons across megaparsec scales. The clustering of matter on these scales, as measured via weak lensing and galaxy surveys, encodes critical cosmological information on the dynamical dark energy, the nature of dark matter and the sum of neutrino masses. The suppression of matter clustering due to feedback processes limits the interpretation of cosmological measurements. Multiple probes of the baryon distribution have attempted to quantify the strength of feedback via measurements of suppression in the matter power spectrum. The dispersion measures (DMs) of fast radio bursts (FRBs) have emerged as a powerful new probe of baryons, with the advantage over other probes of being unbiased with respect to density and temperature. Here, we use a sample of 109…
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