Lorentz violations in multifractal spacetimes
arXiv:1603.03046 · doi:10.1140/epjc/s10052-017-4841-6
Abstract
Using the recent observation of gravitational waves (GW) produced by a black-hole merger, we place a lower bound on the energy above which a multifractal spacetime would display an anomalous geometry and, in particular, violations of Lorentz invariance. In the so-called multifractional theory with -derivatives, we show that the deformation of dispersion relations is much stronger than in generic quantum-gravity approaches (including loop quantum gravity) and, contrary to the latter, present observations on GWs can place very strong bounds on the characteristic scales at which spacetime deviates from standard Minkowski. The energy at which multifractal effects should become apparent is (thus improving previous bounds by 12 orders of magnitude) when the exponents in the measure are fixed to their central value . We also estimate, for the first time, the effect of logarithmic oscillations in the measure (corresponding to a discrete spacetime structure) and find that they do not change much the bounds obtained in their absence, unless the amplitude of the oscillations is fine tuned. This feature, unavailable in known quantum-gravity scenarios, may help the theory to avoid being ruled out by gamma-ray burst (GRB) observations, for which or greater.
12 pages, 1 figure. v2: discussion expanded at several points, comparison with the Lorentz-violating Standard-Model extension added, references added
References in corpus (12)
- Observation of Gravitational Waves from a Binary Black Hole Merger
- Theoretical Physics Implications of the Binary Black-Hole Mergers GW150914 and GW151226
- Search for Lorentz Invariance breaking with a likelihood fit of the PKS 2155-304 flare data taken on MJD 53944
- Multifractional theories: an unconventional review
- Comments on Graviton Propagation in Light of GW150914
- What gravity waves are telling about quantum spacetime
- Multiscale spacetimes from first principles
- Cosmic microwave background and inflation in multi-fractional spacetimes
- Study of time lags in HETE-2 Gamma-Ray Bursts with redshift: search for astrophysical effects and Quantum Gravity signature
- Higher-order Lorentz-invariance violation, quantum gravity and fine-tuning
- ABC of multi-fractal spacetimes and fractional sea turtles
- Particle-physics constraints on multifractal spacetimes
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- Multifractional theories: an updated review
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- Quantum gravity phenomenology at the dawn of the multi-messenger era -- A review
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- Probing Fundamental Physics with Gravitational Waves
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