Dynamical Axion Misalignment from the Witten Effect
Abhishek Banerjee, and Manuel A. Buen-Abad

TL;DR
This paper introduces a novel mechanism involving hidden sector monopoles and the Witten effect to relax the initial misalignment of the QCD axion, enabling high decay constants compatible with dark matter constraints.
Contribution
It proposes a new theoretical framework where monopoles induce early axion oscillations, reducing abundance and addressing overclosure and isocurvature issues for large decay constant axions.
Findings
Monopoles generate a large axion mass via the Witten effect in the early Universe.
The model accommodates axion decay constants up to 10^16 GeV.
Monopole-antimonopole annihilation dissipates energy, removing the monopole-induced mass.
Abstract
We propose a relaxation mechanism for the initial misalignment angle of the pre-inflationary QCD axion with a large decay constant. The proposal addresses the challenges posed to the axion dark matter scenario by an overabundance of axions overclosing the Universe, as well as by isocurvature constraints. Many state-of-the-art experiments are searching for QCD axion dark matter with a decay constant as large as , motivating the need for a theoretical framework such as ours. In our model, hidden sector magnetic monopoles generated in the early Universe give the axion a large mass via the Witten effect, causing early oscillations that reduce the misalignment angle and axion abundance. As the hidden gauge symmetry breaks, its monopoles confine via cosmic strings, dissipating energy into the Standard Model and leading to monopole-antimonopole annihilation. This removes…
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Taxonomy
TopicsDark Matter and Cosmic Phenomena · Quantum Mechanics and Applications · Biofield Effects and Biophysics
