English

Constraining the photon-axion coupling constant with magnetic white dwarfs

High Energy Astrophysical Phenomena 2015-05-28 v2 High Energy Physics - Phenomenology

Abstract

The light pseudoscalar particle, dubbed the axion, borne out of the Peccei-Quinn solution to the strong CP problem in QCD remains elusive. One avenue of inferring its existence is through its coupling to electromagnetic radiation. So far, laboratory experiments have dedicated all efforts to detect the axion in the mass range 106<ma<10310^{-6} < m_a < 10^{-3} eV with a photon-axion coupling strength gaγγ<1010GeV1g_{a\gamma\gamma} < 10^{-10}GeV^{-1}, where the limits are derived from astrophysical considerations. In this study, we present a novel way of constraining gaγγg_{a\gamma\gamma} by looking at the level of linear polarization in the radiation emerging from magnetic white dwarfs (mWDs). We find that photon-axion oscillations in WD magnetospheres can enhance the degree of linear polarization. Observing that most mWDs show only 5% linear polarization, we derive upper limits on gaγγg_{a\gamma\gamma} for different axion masses.

Keywords

Cite

@article{arxiv.1105.2083,
  title  = {Constraining the photon-axion coupling constant with magnetic white dwarfs},
  author = {Ramandeep Gill and Jeremy S. Heyl},
  journal= {arXiv preprint arXiv:1105.2083},
  year   = {2015}
}

Comments

Accepted for publication in PRD. 10 pages, 5 figs. Main results are changed, new references are added, Results section is extended to incorporate the changes. Outlook section is also extended with new references. Fig. 2 and 4 are modified

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