English

Gravitational scattering amplitudes from curved space

General Relativity and Quantum Cosmology 2026-03-24 v1 High Energy Physics - Theory

Abstract

Motivated by the study of extreme mass-ratio binary systems, recent work has explored the use of curved backgrounds in computations of classical gravitational amplitudes [arXiv:2308.15304, arXiv:2308.14832, arXiv:2406.14770]. While these investigations concern the self-force expansion in the ratio of masses of the binaries, the use of curved backgrounds is interesting in its own right. In this thesis, I examine how gravitational computations can be done in a curved background. After having reviewed aspects of general relativity and the dd-dimensional metric generated by a point mass (known as the Schwarzschild-Tangherlini solution), I quantize general relativity on an arbitrary background and compute Feynman rules for gravity in two cases: when the background is flat, and when it is a Schwarzschild-Tangherlini background. I then outline worldline quantum field theory. Using this newly-developed perturbation theory for the partition function of a worldline coupled to gravity in a curved background, I reformulate the perturbative expansion of the Compton amplitude, which describes the scattering of a graviton off a compact object. Having established this framework, I compute the first and second post-Minkowskian contributions to the Compton amplitude. Both are shown to match the results obtained from a flat-space computation. In addition, the second-order amplitude displays the expected infrared behavior and agrees with earlier results on massless gravitational scattering.

Keywords

Cite

@article{arxiv.2603.20261,
  title  = {Gravitational scattering amplitudes from curved space},
  author = {Carl Jordan Eriksen},
  journal= {arXiv preprint arXiv:2603.20261},
  year   = {2026}
}

Comments

96 pages, 2 tables; MSc thesis, May 2025, Niels Bohr Institute, parts of it appeared in arXiv:2506.19705

R2 v1 2026-07-01T11:30:18.041Z