BSFfast: Rapid computation of bound-state effects on annihilation in the early Universe
arXiv:2512.23812 · doi:10.1140/epjc/s10052-026-15886-8
Abstract
Bound-state formation (BSF) can have a large impact on annihilation of new physics particles with long-range interactions in the early Universe. In particular, the inclusion of excited bound states has been found to strongly reduce the dark matter abundance and qualitatively modify the associated freeze-out dynamics. While these effects can be captured by an effective annihilation cross section, its explicit computation is numerically expensive and therefore impractical for repeated use in Boltzmann solvers or parameter scans. In this work we present BSFfast, a lightweight numerical tool that provides precomputed, tabulated effective BSF cross sections for a wide class of phenomenologically relevant models, including highly excited bound states and, where applicable, the full network of radiative bound-to-bound transitions. We exploit rescaling relations of the cross section to efficiently cover models with additional free parameters and provide fast interpolation routines in Mathematica, python and C for use in Boltzmann solvers. As an illustration, we apply BSFfast to a superWIMP scenario with a colored mediator, demonstrating that the tool enables phenomenological studies that would otherwise be computationally prohibitive. The code is publicly available on GitHub.
26 pages + refernces, 6 figures; v2: Added a short appendix with code usage instructions, minor typographical and presentation improvements
References in corpus (10)
- micrOMEGAs 6.0: N-component dark matter
- Lyman- constraints on freeze-in and superWIMPs
- Effects of QCD bound states on dark matter relic abundance
- Bound-state effects on dark matter coannihilation: Pushing the boundaries of conversion-driven freeze-out
- Impact of Sommerfeld Effect and Bound State Formation in Simplified -Channel Dark Matter Models
- Excited bound states and their role in dark matter production
- Saha equilibrium for metastable bound states and dark matter freeze-out
- Testing Dirac leptogenesis with the cosmic microwave background and proton decay
- Unitarity in the non-relativistic regime and implications for dark matter
- t-channel dark matter at the LHC -- a whitepaper