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Testing massive-field modifications of gravity via gravitational waves
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abstract
The direct detection of gravitational waves now provides a new channel of testing gravity theories. Despite that the parametrized post-Einsteinian framework is a powerful tool to quantitatively investigate effects of modification of gravity theory, the gravitational waveform in this framework is still extendable. One of such extensions is to take into account the gradual activation of dipole radiation due to massive fields, which are still only very weakly constrained if their mass $m$ is greater than $10^{-16}$ eV from pulsar observations. Ground-based gravitational-wave detectors, LIGO, Virgo, and KAGRA, are sensitive to this activation in the mass range, $10^{-14}$ eV $\lesssim m \lesssim 10^{-13}$ eV. Hence, we discuss a dedicated test for dipole radiation due to a massive field using the LIGO-Virgo collaboration's open data. In addition, assuming Einstein-dilaton-Gauss-Bonnet (EdGB) type coupling, we combine the results of the analysis of the binary black hole events to obtain the 90\% confidence level constraints on the coupling parameter $\alpha_{\rm EdGB}$ as $\sqrt{\alpha_{\rm EdGB}} \lesssim 2.47$ km for any mass less than $6 \times 10^{-14}$ eV for the first time, including $\sqrt{\alpha_{\rm EdGB}} \lesssim 1.85$ km in the massless limit.
Forward citations
Cited by 2 Pith papers
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Probing Massive Scalar Fields from a Pulsar in a Stellar Triple System
PSR J0337 timing bounds on equivalence-principle violation are translated into new constraints on massive scalar, axion, and dark-matter-mediator fifth forces, with the strongest limits on massive Brans-Dicke gravity ...
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Parameterized and Consistency Tests of Gravity with Gravitational Waves: Current and Future
A review of ppE and IMR consistency tests of GR with GWs, forecasting that future multi-band detectors can improve bounds on modified gravity by orders of magnitude.
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