Ito calculus meets the Hubble tension: Effects of small-scale electron density fluctuations on the CMB anisotropies
Jens Chluba, Geoffrey Vasil, Richard Battye

TL;DR
This paper introduces a new formalism using Ito calculus to model small-scale electron density fluctuations and their impact on CMB anisotropies, revealing effects relevant to early structure formation and the Hubble tension.
Contribution
It develops a stochastic approach to include electron density fluctuations in CMB analysis, identifying two new effects that influence anisotropies beyond standard models.
Findings
Electron fluctuations cause additional damping of CMB anisotropies.
New effects are significant in cosmologies with early structure formation.
Corrections may impact the Hubble tension and cosmological inferences.
Abstract
In this work, we develop a novel formalism to include the effect of electron density fluctuations at ultra small scales (well below the sound horizon at last scattering) on the observed anisotropies of the Cosmic Microwave Background (CMB). We treat the electron field as an independent stochastic variable and obtain the required ensemble-averaged photon Boltzmann equations using Ito calculus. Beyond changes to the average recombination history (which can be incorporated in the standard approach) our work identifies two new effects caused by the clumpiness of the medium. The first is a correction to the Thomson visibility function caused by correlations of the electron fluctuations along the line of sight, leading to an additional broadening of the visibility towards higher redshifts which causes extra damping and smearing of the CMB anisotropies. The second effect is a reduction of the…
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Taxonomy
TopicsCosmology and Gravitation Theories · Relativity and Gravitational Theory · Black Holes and Theoretical Physics
