S-matrix bootstrap bounds on self-interacting dark matter
Qing Chen, Zhuo-Hui Wang, Shuang-Yong Zhou
Abstract
Self-interacting dark matter turns the structure of galactic halos into a direct requirement on a low-energy scattering amplitude. We show that, for weakly coupled scalar dark matter, this requirement implies a much stronger mass bound on the dark matter particle than partial-wave unitarity alone. Using analyticity, crossing symmetry, locality and partial-wave unitarity, we compute the maximal allowed threshold amplitude with a dispersive primal S-matrix bootstrap, assuming only a weakly coupled EFT below a scale Λ and allowing arbitrary UV particle content above Λ. For the benchmark self-interaction cross section σ self=10-24(M/GeV)cm2, the mass of a generic weakly coupled scalar satisfies M 0.3\,GeV in the controlled EFT regime. If dark matter is a derivative-dominated pseudo-Nambu-Goldstone boson, the mass bound is lowered to the MeV scale or below, depending on the hierarchy M/Λ.
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