arXiv:2607.06422·v2·High Energy Astrophysical Phenomena
Finite-Field QED Corrections to Vacuum Birefringence and Magnetar Polarization Transport
S. Abbassi🇨🇦 · F. A. Chishtie🇨🇳 · S. R. Valluri🇨🇦
Abstract
We study low-energy photon propagation in a constant magnetic field within the finite-field one-loop Heisenberg--Euler framework and apply the resulting mode-dependent refractive indices to magnetar polarization transport. In a centered-dipole model, the polarization-limiting radius is unchanged to better than because mode decoupling occurs at , where . Near the surface, however, the weak-field Cotton--Mouton expression overestimates the accumulated birefringent phase by up to a factor at ~G. At the plasma--vacuum resonance, finite-field corrections reduce the resonance density by and raise the adiabatic conversion energy by for 1E~1547.05408; the corresponding changes are factors and for 1RXS~J17084009, and factors and for SGR~180620, the latter controlled by the strong-field asymptote. The parallel-mode magnetic response remains positive and exhibits a broad maximum near . Its strict expansion is monotonic, indicating that the detailed position and profile of the maximum are not controlled beyond the present approximation and require higher-loop assessment. These results identify vacuum-resonance observables as the most sensitive channel for testing finite-field QED in magnetars.
Comments: e.g. 25 pages, 5 figures, Accepted for Publication in the European Physical Journal C