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A limit on the variation of the speed of light arising from quantum gravity effects

Abstract

A cornerstone of Einstein’s special relativity is Lorentz invariance—the postulate that all observers measure exactly the same speed of light in vacuum, independent of photon-energy. While special relativity assumes that there is no fundamental length-scale associated with such invariance, there is a fundamental scale (the Planck scale, lPlanck ≈ 1.62 × 10-33 cm or EPlanck = MPlanckc2 ≈ 1.22 × 1019 GeV), at which quantum effects are expected to strongly affect the nature of space–time. There is great interest in the (not yet validated) idea that Lorentz invariance might break near the Planck scale. A key test of such violation of Lorentz invariance is a possible variation of photon speed with energy1,2,3,4,5,6,7. Even a tiny variation in photon speed, when accumulated over cosmological light-travel times, may be revealed by observing sharp features in γ-ray burst (GRB) light-curves2. Here we report the detection of emission up to 31 GeV from the distant and short GRB 090510. We find no evidence for the violation of Lorentz invariance, and place a lower limit of 1.2EPlanck on the scale of a linear energy dependence (or an inverse wavelength dependence), subject to reasonable assumptions about the emission (equivalently we have an upper limit of lPlanck/1.2 on the length scale of the effect). Our results disfavour quantum-gravity theories3,6,7 in which the quantum nature of space–time on a very small scale linearly alters the speed of light.

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Figure 1: Light curves of GRB 090510 at different energies.

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Acknowledgements

Acknowledgements The Fermi LAT Collaboration acknowledges support from a number of agencies and institutes for both the development and the operation of the LAT as well as scientific data analysis. These include NASA and DOE in the United States, CEA/Irfu and IN2P3/CNRS in France, ASI and INFN in Italy, MEXT, KEK, and JAXA in Japan, and the K. A. Wallenberg Foundation, the Swedish Research Council and the National Space Board in Sweden. Additional support from INAF in Italy for science analysis during the operations phase is also acknowledged. J. Granot gratefully acknowledges a Royal Society Wolfson Research Merit Award. The Fermi GBM Collaboration acknowledges the support of NASA in the United States and DRL in Germany. J. Conrad is a Royal Swedish Academy of Sciences Research Fellow, funded by a grant from the K. A. Wallenberg Foundation. E.T. is a NASA Postdoctoral Program Fellow and a Canon Foundation in Europe Fellow. A. J.v.d.H. is a NASA Postdoctoral Program Fellow. We thank J. Ellis for comments.

Author Contributions All authors contributed extensively to the work presented in this paper.

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Correspondence to J. Granot, S. Guiriec, M. Ohno or V. Pelassa.

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This file contains Supplementary Notes and Data, Supplementary Figures S1-S3, Supplementary Table S1 and Supplementary References. (PDF 378 kb)

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Abdo, A., Ackermann, M., Ajello, M. et al. A limit on the variation of the speed of light arising from quantum gravity effects . Nature 462, 331–334 (2009). https://doi.org/10.1038/nature08574

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