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Axion-like Dark Matter Constraints from CMB Birefringence
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abstract
Axion-like particles are dark matter candidates motivated by the Peccei-Quinn mechanism and also occur in effective field theories where their masses and photon couplings are independent. We estimate the dispersion of circularly polarized photons in a background of oscillating axion-like particles (ALPs) with the standard $g_{a\gamma}\,a\,F_{\mu\nu}\tilde F^{\mu\nu}/4$ coupling to photons. This leads to birefringence or rotation of linear polarization by ALP dark matter. Cosmic microwave background (CMB) birefringence limits $\Delta \alpha \lesssim (1.0)^\circ$ enable us to constrain the axion-photon coupling $g_{a\gamma} \lesssim 10^{-17}-10^{-12}\,{\rm GeV}^{-1}$, for ultra-light ALP masses $m_a \sim 10^{-27} - 10^{-24}$ eV. This improves upon previous axion-photon coupling limits by up to four orders of magnitude. Future CMB observations could tighten limits by another one to two orders.
Forward citations
Cited by 3 Pith papers
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Searches for signatures of ultra-light axion dark matter in polarimetry data of the European Pulsar Timing Array
Analysis of EPTA pulsar polarimetry finds no evidence for ultra-light axion dark matter, sets upper limits on the axion-photon coupling, and attributes a common 2-year-period signal to ionospheric Faraday rotation.
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Constraints on Anisotropic Cosmic Birefringence from CMB B-mode Polarization
The combined analysis of SPTpol, ACT, POLARBEAR, and BICEP data constrains the anisotropic cosmic birefringence amplitude to ACB = 0.42^{+0.40}_{-0.34} × 10^{-4}, consistent with zero.
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Pulsar timing and polarimetry: results and perspectives
A review of pulsar timing and polarimetry, covering the detection of a nanohertz gravitational wave background and limits on ultralight scalar dark matter.
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