Constraints on axion-like polarization oscillations in the cosmic microwave background with POLARBEAR
Abstract
Very light pseudoscalar fields, often referred to as axions, are compelling dark matter candidates and can potentially be detected through their coupling to the electromagnetic field. Recently a novel detection technique using the cosmic microwave background (CMB) was proposed, which relies on the fact that the axion field oscillates at a frequency equal to its mass in appropriate units, leading to a time-dependent birefringence. For appropriate oscillation periods this allows the axion field at the telescope to be detected via the induced sinusoidal oscillation of the CMB linear polarization. We search for this effect in two years of POLARBEAR data. We do not detect a signal, and place a median upper limit of on the sinusoid amplitude for oscillation frequencies between and , which corresponds to axion masses between and . Under the assumptions that 1) the axion constitutes all the dark matter and 2) the axion field amplitude is a Rayleigh-distributed stochastic variable, this translates to a limit on the axion-photon coupling .
Keywords
Cite
@article{arxiv.2303.08410,
title = {Constraints on axion-like polarization oscillations in the cosmic microwave background with POLARBEAR},
author = {The POLARBEAR Collaboration and Shunsuke Adachi and Tylor Adkins and Kam Arnold and Carlo Baccigalupi and Darcy Barron and Kolen Cheung and Yuji Chinone and Kevin T. Crowley and Josquin Errard and Giulio Fabbian and Chang Feng and Raphael Flauger and Takuro Fujino and Daniel Green and Masaya Hasegawa and Masashi Hazumi and Daisuke Kaneko and Nobuhiko Katayama and Brian Keating and Akito Kusaka and Adrian T. Lee and Yuto Minami and Haruki Nishino and Christian L. Reichardt and Praween Siritanasak and Jacob Spisak and Osamu Tajima and Satoru Takakura and Sayuri Takatori and Grant Paul Teply and Kyohei Yamada},
journal= {arXiv preprint arXiv:2303.08410},
year = {2023}
}
Comments
17 pages, 5 figures, 2 tables. Published in Physical Review D