Projected Constraints on Lorentz-Violating Gravity with Gravitational Waves

dc.contributor.authorHansen, Devin
dc.contributor.authorYunes, Nicolás
dc.contributor.authorYagi, Kent
dc.date.accessioned2015-07-13T18:05:00Z
dc.date.available2015-07-13T18:05:00Z
dc.date.issued2015-04
dc.description.abstractGravitational waves are excellent tools to probe the foundations of General Relativity in the strongly dynamical and non-linear regime. One such foundation is Lorentz symmetry, which can be broken in the gravitational sector by the existence of a preferred time direction, and thus, a preferred frame at each spacetime point. This leads to a modification in the orbital decay rate of binary systems, and also in the generation and chirping of their associated gravitational waves. We here study whether waves emitted in the late, quasi-circular inspiral of non-spinning, neutron star binaries can place competitive constraints on two proxies of gravitational Lorentz-violation: Einstein-\AE{}ther theory and khronometric gravity. We model the waves in the small-coupling (or decoupling) limit and in the post-Newtonian approximation, by perturbatively solving the field equations in small deformations from General Relativity and in the small-velocity/weak-gravity approximation. We assume a gravitational wave consistent with General Relativity has been detected with second- and third-generation, ground-based detectors, and with the proposed space-based mission, DECIGO, with and without coincident electromagnetic counterparts. Without a counterpart, a detection consistent with General Relativity of neutron star binaries can only place competitive constraints on gravitational Lorentz violation when using future, third-generation or space-based instruments. On the other hand, a single counterpart is enough to place constraints that are 10 orders of magnitude more stringent than current binary pulsar bounds, even when using second-generation detectors. This is because Lorentz violation forces the group velocity of gravitational waves to be different from that of light, and this difference can be very accurately constrained with coincident observations.en_US
dc.description.sponsorshipNSF grant PHY-1114374; CAREER Award PHY-1250636; National Aeronautics and Space Administration from grant NNX11AI49G under sub-award 00001944en_US
dc.identifier.citationHansen, Devin, Nicolas Yunes, and Kent Yagi. "Projected Constraints on Lorentz-Violating Gravity with Gravitational Waves." Phys. Rev. D 91, no. 8 (April 2015). doi:10.1103/physrevd.91.082003.en_US
dc.identifier.issn1550-7998
dc.identifier.urihttps://scholarworks.montana.edu/handle/1/9180
dc.subjectPhysicsen_US
dc.subjectGravityen_US
dc.titleProjected Constraints on Lorentz-Violating Gravity with Gravitational Wavesen_US
dc.typeArticleen_US
mus.citation.issue8en_US
mus.citation.journaltitlePhysical Review Den_US
mus.citation.volume91en_US
mus.identifier.categoryPhysics & Mathematicsen_US
mus.identifier.doi10.1103/physrevd.91.082003en_US
mus.relation.collegeCollege of Letters & Scienceen_US
mus.relation.departmentPhysics.en_US
mus.relation.universityMontana State University - Bozemanen_US

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