Constraining Lorentz-violating, modified dispersion relations with gravitational waves

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Abstract

Modified gravity theories generically predict a violation of Lorentz invariance, which may lead to a modified dispersion relation for propagating modes of gravitational waves. We construct a parametrized dispersion relation that can reproduce a range of known Lorentz-violating predictions and investigate their impact on the propagation of gravitational waves. A modified dispersion relation forces different wavelengths of the gravitational-wave train to travel at slightly different velocities, leading to a modified phase evolution observed at a gravitational-wave detector. We show how such corrections map to the waveform observable and to the parametrized post-Einsteinian framework, proposed to model a range of deviations from General Relativity. Given a gravitational-wave detection, the lack of evidence for such corrections could then be used to place a constraint on Lorentz violation. The constraints we obtain are tightest for dispersion relations that scale with small power of the graviton's momentum and deteriorate for a steeper scaling. © 2012 American Physical Society.

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Mirshekari, S., Yunes, N., & Will, C. M. (2012). Constraining Lorentz-violating, modified dispersion relations with gravitational waves. Physical Review D - Particles, Fields, Gravitation and Cosmology, 85(2). https://doi.org/10.1103/PhysRevD.85.024041

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