English

Vacuum Birefringence in a Rotating Magnetic Field

High Energy Physics - Phenomenology 2008-11-26 v4

Abstract

We calculate the vacuum polarization-induced ellipticity acquired by a linearly polarized laser beam of angular frequency ωˉ\bar \omega on traversing a region containing a transverse magnetic field rotating with a small angular velocity Ω\Omega around the beam axis. The transmitted beam contains the fundamental frequency ωˉ\bar \omega and weak sidebands of frequency ωˉ±2Ω\bar \omega \pm 2 \Omega, but no other sidebands. To first order in small quantities, the ellipticity acquired by the transmitted beam is independent of Ω\Omega, and is the same as would be calculated in the approximation of regarding the magnetic field as fixed at its instantaneous angular orientation, using the standard vacuum birefringence formulas for a static magnetic field. Also to first order, there is no rotation of the polarization plane of the transmitted beam. Analogous statements hold when the magnetic field strength is slowly varying in time.

Cite

@article{arxiv.hep-ph/0611267,
  title  = {Vacuum Birefringence in a Rotating Magnetic Field},
  author = {Stephen L. Adler},
  journal= {arXiv preprint arXiv:hep-ph/0611267},
  year   = {2008}
}

Comments

20 pages; v2 has simplification of results of Eqs. (9a,b), and new Sec. 5 giving a perturbation theory derivation of results; v3 has minor revisions suggested by referee--this is final published version; v4, typos corrected