Black-hole scattering with numerical relativity: Self-force extraction and post-Minkowskian validation
Abstract
The asymptotic nature of unbound binary-black-hole encounters provides a clean method for comparing different approaches for modeling the two-body problem in general relativity. In this work, we use numerical relativity simulations of black-hole scattering, generated using the Spectral Einstein Code, to explore the self-force and post-Minkowskian expansions of the scattering angle. First, we use a set of unequal-mass simulations to extract the self-force contributions to the scattering angle. Our main result is that using information up to second-order in the symmetric mass ratio (2SF) reproduces numerical relativity within the error bars across the full range of mass-ratios, including equal mass. Next, we compare our numerical relativity results to state-of-the-art post-Minkowskian predictions at larger impact parameters than previously explored. We find good agreement in the weak-field regime and discuss the relative importance of higher order terms.
Copyright and License
Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI. Open access publication funded by the Max Planck Society.
Acknowledgement
The authors would like to thank O. Markwell and P. J. Nee for useful discussions. Computations were performed on the HPC system Urania at the Max Planck Computing and Data Facility. This work makes use of the Black Hole Perturbation Toolkit [64]. This material is based upon work supported by the National Science Foundation under Grants No. PHY-2407742, No. PHY-2207342, and No. OAC-2209655, and by the Sherman Fairchild Foundation at Cornell. This work was supported by the National Science Foundation under Grants No. PHY-2309211, No. PHY-2309231, and No. OAC-2513339 at Caltech, and the Sherman Fairchild Foundation at Caltech.
Data Availability
The data that support the findings of this article are openly available [65].
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Additional details
Related works
- Is new version of
- Discussion Paper: arXiv:2511.10196 (arXiv)
- Is supplemented by
- Dataset: https://arxiv.org/src/2511.10196v1/anc/ScatteringAngles.dat (URL)
Funding
- National Science Foundation
- PHY-2407742
- National Science Foundation
- PHY-2207342
- National Science Foundation
- OAC-2209655
- Sherman Fairchild Foundation
- National Science Foundation
- PHY-2309211
- National Science Foundation
- PHY-2309231
- National Science Foundation
- OAC-2513339
Dates
- Submitted
-
2025-11-18
- Accepted
-
2025-11-20
Caltech Custom Metadata
- Caltech groups
- TAPIR , Walter Burke Institute for Theoretical Physics , Division of Physics, Mathematics and Astronomy (PMA) , Physics Department
- Publication Status
- Published