Robust Constraint on Lorentz Violation Using Fermi-LAT Gamma-Ray Burst Data
Abstract
Models of quantum gravity suggest that the vacuum should be regarded as a medium with quantum structure that may have non-trivial effects on photon propagation, including the violation of Lorentz invariance. Fermi Large Area Telescope (LAT) observations of gamma-ray bursts (GRBs) are sensitive probes of Lorentz invariance, via studies of energy-dependent timing shifts in their rapidly-varying photon emissions. In this paper we analyze the Fermi-LAT measurements of high-energy gamma rays from GRBs with known redshifts, allowing for the possibility of energy-dependent variations in emission times at the sources as well as a possible non-trivial refractive index in vacuo for photons. We use statistical estimators based on the irregularity, kurtosis and skewness of bursts that are relatively bright in the 100 MeV to multi-GeV energy band to constrain possible dispersion effects during propagation. We find that the energy scale characterizing a linear energy dependence of the refractive index should exceed a few GeV, and we estimate the sensitivity attainable with additional future sources to be detected by Fermi-LAT.
Cite
@article{arxiv.1807.00189,
title = {Robust Constraint on Lorentz Violation Using Fermi-LAT Gamma-Ray Burst Data},
author = {John Ellis and Rostislav Konoplich and Nikolaos E. Mavromatos and Linh Nguyen and Alexander S. Sakharov and Edward K. Sarkisyan-Grinbaum},
journal= {arXiv preprint arXiv:1807.00189},
year = {2019}
}
Comments
40 pages, 15 figures, version accepted for publication in PRD, the bibliography improved