Real and virtual photons in an external constant electromagnetic field of most general form
arXiv:1002.1813 · doi:10.1103/PhysRevD.81.125008
Abstract
The photon behavior in an arbitrary superposition of constant magnetic and electric fields is considered on most general grounds basing on the first principles like Lorentz- gauge- charge- and parity-invariance. We make model- and approximation-independent, but still rather informative, statements about the behavior that the requirement of causal propagation prescribes to massive and massless branches of dispersion curves, and describe the way the eigenmodes are polarized. We find, as a consequence of Hermiticity in the transparency domain, that adding a smaller electric field to a strong magnetic field in parallel to the latter causes enhancement of birefringence. We find the magnetic field produced by a point electric charge far from it (a manifestation of magneto-electric phenomenon). We establish degeneracies of the polarization tensor that (under special kinematic conditions) occur due to space-time symmetries of the vacuum left after the external field is imposed.
30 pages, 1 figure, 57 equations, reference list of 38 items
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- Anisotropic tomography of heavy quark dissociation by using general propagator structure at finite magnetic field
- Heavy quark dynamics in a strongly magnetized quark-gluon plasma
- Photon propagation in noncommutative QED with constant external field
- Photon propagation in non-trivial backgrounds
- A cascade of pair production by a photon with subsequent annihilation to a single photon in a strong magnetic field