English

A Flavor Specific Chiral $U(1)_X$ Framework for Explaining the ATOMKI Anomaly

High Energy Physics - Phenomenology 2026-04-27 v1

Abstract

Recent anomalies in nuclear transitions observed by the ATOMKI collaboration suggest the existence of a new boson with a mass of 17\sim 17 MeV. A theoretically consistent interpretation requires a framework that not only matches the kinematics but also reproduces the observed decay rates while satisfying stringent experimental constraints. Among various possibilities, an axial-vector or mixed vector-axial-vector mediator ZZ' emerges as the most viable candidate. However, getting such couplings for a light ZZ' gauge boson is highly non trivial task. In this work, we construct a gauged chiral, flavor specific U(1)XU(1)_X extensions of the Standard Model where the associated ZZ' boson acts as the 1717 MeV particle. By employing a two Higgs doublet framework, we generate the necessary non-vanishing axial-vector couplings while ensuring gauge anomaly cancellation and consistent fermion mass generation. Focusing on the 8Be^8\mathrm{Be} and 4He^4\mathrm{He} signals, we show that in this model the viable parameter space to resolve the ATOMKI anomalies is also consistent with a diverse set of experimental constraints, including atomic parity violation, beam dump experiments, meson decays, and neutrino nucleus and neutrino electron scatterings. Our results demonstrate that this framework offers a theoretically sound and phenomenologically robust solution to the ATOMKI anomaly.

Keywords

Cite

@article{arxiv.2604.22278,
  title  = {A Flavor Specific Chiral $U(1)_X$ Framework for Explaining the ATOMKI Anomaly},
  author = {Aditya Batra and F. R. Joaquim and Hemant Prajapati and Rahul Srivastava},
  journal= {arXiv preprint arXiv:2604.22278},
  year   = {2026}
}

Comments

34 pages, 5 figures, 8 Tables

R2 v1 2026-07-01T12:33:26.514Z