4.7 Article

Planck-scale-modified dispersion relations in FRW spacetime

Journal

PHYSICAL REVIEW D
Volume 92, Issue 12, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.92.124042

Keywords

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Funding

  1. John Templeton Foundation
  2. National Science Center [DEC-2011/02/A/ST2/00294]
  3. Shanghai Municipality [KBH1512299]
  4. Fudan University [JJH1512105]

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In recent years, Planck-scale modifications of the dispersion relation have been attracting increasing interest also from the viewpoint of possible applications in astrophysics and cosmology, where spacetime curvature cannot be neglected. Nonetheless, the interplay between Planck-scale effects and spacetime curvature is still poorly understood, particularly in cases where curvature is not constant. These challenges have been so far postponed by relying on an ansatz, first introduced by Jacob and Piran. We propose here a general strategy of analysis of the effects of modifications of the dispersion relation in Friedmann-Robertson- Walker spacetimes, applicable both to cases where the relativistic equivalence of frames is spoiled (preferred-frame scenarios) and to the alternative possibility of DSR-relativistic theories, theories that are fully relativistic but with relativistic laws deformed so that the modified dispersion relation is observer independent. We show that the Jacob-Piran ansatz implicitly assumes that spacetime translations are not affected by the Planck scale, while under rather general conditions, the same Planck-scale quantum-spacetime structures producing modifications of the dispersion relation also affect translations. Through the explicit analysis of one of the effects produced by modifications of the dispersion relation, an effect amounting to Planck-scale corrections to travel times, we show that our concerns are not merely conceptual but rather can have significant quantitative implications.

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