Conservative Black Hole Scattering at Fifth Post-Minkowskian and Second Self-Force Order
arXiv:2601.16256
The authors apply worldline quantum field theory to compute the conservative scattering angle and impulse for classical black‑hole collisions at fifth post‑Minkowskian (5PM) and second self‑force (2SF) order, using advanced multi‑loop integration techniques and proposing a new prescription to cancel spurious divergences.
Abstract
Using the worldline quantum field theory formalism, we compute conservative contributions to the scattering angle and impulse for classical black hole scattering at fifth post-Minkowskian (5PM) and second self-force (2SF) order. This four-loop calculation involves non-planar Feynman integrals and requires advanced integration-by-parts reduction, novel differential-equation strategies, and efficient boundary-integral algorithms to solve a system of hundreds of master integrals in four integral families on high-performance computing systems. The resulting function space includes multiple polylogarithms as well as iterated integrals with a K3 period, which generate a spurious velocity divergence at , . This divergence is present in the potential region and must be canceled by contributions from the radiative memory region, while its dimensional-regularisation pole should cancel against the radiative tail region. As the standard use of Feynman propagators fails to ensure this cancellation, we instead propose a (-3) conservative prescription that realises both cancellations, leading to a physically sensible answer. All available low-velocity checks of our result against the post-Newtonian literature are satisfied.
17 pages, 5 figures, 3 tables, accompanying Zenodo submission of ancillary files, see https://zenodo.org/records/18340334 ; v2: typos corrected & reference added; v3: minor correction & reference added; v4: version to be published in PRL