BICEP / Keck XIV: Improved constraints on axion-like polarization oscillations in the cosmic microwave background
BICEP/Keck Collaboration: P. A. R. Ade, Z. Ahmed, M. Amiri, D., Barkats, R. Basu Thakur, C. A. Bischoff, D. Beck, J. J. Bock, H. Boenish, E., Bullock, V. Buza, J. R. Cheshire IV, J. Connors, J. Cornelison, M. Crumrine,, A. Cukierman, E. V. Denison, M. Dierickx, L. Duband

TL;DR
This paper improves the search for axion-like dark matter through polarization oscillations in the CMB, setting new constraints on axion-photon coupling and demonstrating the potential of future experiments to explore uncharted parameter space.
Contribution
The paper introduces an enhanced method for detecting axion-like polarization oscillations in the CMB and applies it to an expanded dataset, improving constraints on axion properties.
Findings
Set upper limits on axion-photon coupling for periods of 1-30 days.
Achieved a median rotation amplitude limit of 0.27 degrees.
Demonstrated the potential for future experiments to explore new axion parameter space.
Abstract
We present an improved search for axion-like polarization oscillations in the cosmic microwave background (CMB) with observations from the Keck Array. An all-sky, temporally sinusoidal rotation of CMB polarization, equivalent to a time-variable cosmic birefringence, is an observable manifestation of a local axion field and potentially allows a CMB polarimeter to detect axion-like dark matter directly. We describe improvements to the method presented in previous work, and we demonstrate the updated method with an expanded dataset consisting of the 2012-2015 observing seasons. We set limits on the axion-photon coupling constant for mass in the range -, which corresponds to oscillation periods on the order of hours to years. Our results are consistent with the background model. For periods between and ($1.6 \times 10^{-21} \leq m \leq…
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