English

Electromagnetic Leptogenesis -- an EFT-Consistent Analysis via Wilson Coefficients. Part II. Low-Scale, Resonant Regime

High Energy Physics - Phenomenology 2025-12-11 v2

Abstract

We study electromagnetic leptogenesis (EMLG) in the low-scale, resonant regime within a fully effective-field-theory (EFT)--consistent framework. Starting from a UV Lagrangian and performing a one-loop matching to obtain the gauge-invariant dipole operator ONBO_{NB} with its Wilson coefficient CNBC_{NB}, we implement the Pilaftsis--Underwood resummation for the self-energy contributions to the CP asymmetries and evolve a flavour covariant transport system across the electroweak window. In the quasi-degenerate limit MmMiΓm/2M_m-M_i\simeq\varGamma_m/2, the CP-odd source acquires a Breit--Wigner--form enhancement whereas the washout saturates, with the freeze-out baryon asymmetry achieving YBFO1010Y_B^{\rm FO}\gtrsim 10^{-10} across the strong-washout regime, comfortably above the observed value YBobs8.7×1011Y_B^{\rm obs}\simeq 8.7\times 10^{-11}. This establishes resonant EMLG at O(100) GeVO(100)~{\rm GeV} as a viable EFT-based mechanism for the baryon asymmetry of the Universe.

Keywords

Cite

@article{arxiv.2510.21089,
  title  = {Electromagnetic Leptogenesis -- an EFT-Consistent Analysis via Wilson Coefficients. Part II. Low-Scale, Resonant Regime},
  author = {Rin Takada},
  journal= {arXiv preprint arXiv:2510.21089},
  year   = {2025}
}

Comments

33 pages, 6 figures

R2 v1 2026-07-01T07:03:16.082Z