English

Dynamical Evidence For a Fifth Force Explanation of the ATOMKI Nuclear Anomalies

High Energy Physics - Phenomenology 2020-08-19 v2 High Energy Physics - Experiment Nuclear Experiment Nuclear Theory

Abstract

Recent anomalies in 8^8Be and 4^4He nuclear decays can be explained by postulating a fifth force mediated by a new boson XX. The distributions of both transitions are consistent with the same XX mass, 17 MeV, providing kinematic evidence for a single new particle explanation. In this work, we examine whether the new results also provide dynamical evidence for a new particle explanation, that is, whether the observed decay rates of both anomalies can be described by a single hypothesis for the XX boson's interactions. We consider the observed 8^8Be and 4^4He excited nuclei, as well as a 12^{12}C excited nucleus; together these span the possible JPJ^P quantum numbers up to spin 1. For each transition, we determine whether scalar, pseudoscalar, vector, or axial vector XX particles can mediate the decay, and we construct the leading operators in a nuclear physics effective field theory that describes them. Assuming parity conservation, the scalar case is excluded and the pseudoscalar case is highly disfavored. Remarkably, however, the protophobic vector gauge boson, first proposed to explain only the 8^8Be anomaly, also explains the 4^4He anomaly within experimental uncertainties. We predict signal rates for other closely related nuclear measurements, which, if confirmed, will provide overwhelming evidence that a fifth force has been discovered.

Keywords

Cite

@article{arxiv.2006.01151,
  title  = {Dynamical Evidence For a Fifth Force Explanation of the ATOMKI Nuclear Anomalies},
  author = {Jonathan L. Feng and Tim M. P. Tait and Christopher B. Verhaaren},
  journal= {arXiv preprint arXiv:2006.01151},
  year   = {2020}
}

Comments

32 pages, 6 figures; Corrected small typos and added references