CMB polarization non-Gaussianity from accreting primordial black holes
Trey W. Jensen (NYU), Yacine Ali-Ha\"imoud (NYU)

TL;DR
This paper investigates how accreting primordial black holes induce non-Gaussian features in the CMB polarization, especially trispectra, and assesses the detectability of these signals with current and future experiments.
Contribution
It extends previous work by computing polarization trispectra induced by accreting PBHs and evaluates their potential for detection with Planck and CMB Stage-4 experiments.
Findings
Polarization trispectra sourced by PBHs are computed.
Planck's sensitivity to PBHs via polarization trispectra is limited.
Future CMB Stage-4 experiments could significantly improve detection prospects.
Abstract
Primordial black holes (PBHs) would induce non-Gaussianity in the cosmic microwave background (CMB) by sourcing recombination perturbations spatially modulated by relative velocities between PBHs and the baryons they accrete. The leading non-Gaussian signatures are non-vanishing connected 4-point correlation functions, or trispectra. Earlier, we computed the CMB temperature trispectrum, and forecasted Planck to be more sensitive to it than to changes in the CMB temperature power spectrum for light enough PBHs. Excitingly, accreting PBHs would also induce non-Gaussianity in CMB polarization, and source both E and B modes, which we compute in this paper. We first calculate linear-response perturbations to the tensor-valued photon distribution function sourced by a general spatially-varying ionization history, and apply our results to accreting PBHs. We then compute linear-order…
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Taxonomy
TopicsCosmology and Gravitation Theories · Relativity and Gravitational Theory · Astronomy and Astrophysical Research
