English

Spinning waveforms in cubic effective field theories of gravity

High Energy Physics - Theory 2024-08-02 v1 High Energy Astrophysical Phenomena General Relativity and Quantum Cosmology

Abstract

We derive analytic all-order-in-spin expressions for the leading-order time-domain waveforms generated in the scattering of two Kerr black holes with arbitrary masses and spin vectors in the presence of all independent cubic deformations of Einstein-Hilbert gravity. These are the two parity-even interactions I1I_1 and G3G_3, and the parity-odd ones I~1\tilde{I}_1 and G~3\tilde{G}_3. Our results are obtained using three independent methods: a particularly efficient direct integration and tensor reduction approach; integration by parts combined with the method of differential equations; and finally a residue computation. For the case of the G3G_3 and G~3\tilde{G}_3 deformations we can express the spinning waveform in terms of the scalar waveform with appropriately shifted impact parameters, which are reminiscent of Newman-Janis shifts. For I1I_1 and I~1\tilde{I}_1 similar shifts occur, but are accompanied by additional contributions that cannot be captured by simply shifting the scalar I1I_1 and I~1\tilde{I}_1 waveforms. We also show the absence of leading-order corrections to gravitational memory. Our analytic results are notably compact, and we compare the effectiveness of the three methods used to obtain them. We also briefly comment on the magnitude of the corrections to observables due to cubic deformations.

Keywords

Cite

@article{arxiv.2408.00587,
  title  = {Spinning waveforms in cubic effective field theories of gravity},
  author = {Andreas Brandhuber and Graham R. Brown and Gang Chen and Gabriele Travaglini and Pablo Vives Matasan},
  journal= {arXiv preprint arXiv:2408.00587},
  year   = {2024}
}

Comments

38 pages, 6 figures