Emergence of Calabi-Yau manifolds in high-precision black-hole scattering.

Driesse, Mathias; Jakobsen, Gustav Uhre; Klemm, Albrecht; Mogull, Gustav; Nega, Christoph; Plefka, Jan; Sauer, Benjamin; Usovitsch, Johann · Nature · 2025

basic_science · Level V

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Abstract

When two massive objects (black holes, neutron stars or stars) in our universe fly past each other, their gravitational interactions deflect their trajectories<sup>1,2</sup>. The gravitational waves emitted in the related bound-orbit system-the binary inspiral-are now routinely detected by gravitational-wave observatories<sup>3</sup>. Theoretical physics needs to provide high-precision templates to make use of unprecedented sensitivity and precision of the data from upcoming gravitational-wave observatories<sup>4</sup>. Motivated by this challenge, several analytical and numerical techniques have been developed to approximately solve this gravitational two-body problem. Although numerical relativity is accurate<sup>5-7</sup>, it is too time-consuming to rapidly produce large numbers of gravitational-wave templates. For this, approximate analytical results are also required<sup>8-15</sup>. Here we report on a new, highest-precision analytical result for the scattering angle, radiated energy and recoil of a black hole or neutron star scattering encounter at the fifth order in Newton's gravitational coupling G, assuming a hierarchy in the two masses. This is achieved by modifying state-of-the-art techniques for the scattering of elementary particles in colliders to this classical physics problem in our universe. Our results show that mathematical functions related to Calabi-Yau (CY) manifolds, 2n-dimensional generalizations of tori, appear in the solution to the radiated energy in these scatterings. We anticipate that our analytical results will allow the development of a new generation of gravitational-wave models, for which the transition to the bound-state problem through analytic continuation and strong-field resummation will need to be performed.