arXiv:hep-ph/0607188·v1·High Energy Physics — Phenomenology
Vacuum Birefringence as a Probe of Planck Scale Noncommutativity
Steven A. Abel (Durham U.)🇬🇧 · Joerg Jaeckel (DESY)🇩🇪 · Valentin V. Khoze (Durham U.)🇬🇧 · Andreas Ringwald (DESY)🇩🇪
Abstract
Because of ultraviolet/infrared (UV/IR) mixing, the low energy physics of noncommutative gauge theories in the Moyal-Weyl approach seems to depend crucially on the details of the ultraviolet completion. However, motivated by recent string theory analyses, we argue that their phenomenology with a very general class of UV completions can be accurately modelled by a cutoff close to the Planck scale. In the infrared the theory tends continuously to the commutative gauge theory. If the photon contains contributions from a trace-U(1), we would observe vacuum birefringence, i.e. a polarisation dependent propagation speed, as a residual effect of the noncommutativity. Constraints on this effect require the noncommutativity scale to be close to the Planck scale.
Comments: 19 pages, 4 figures, 1 table