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Heavy physics contributions to neutrinoless double beta decay from QCD

Nuclear Theory 2018-11-02 v3 High Energy Physics - Lattice High Energy Physics - Phenomenology Nuclear Experiment

Abstract

Observation of neutrinoless double beta decay, a lepton number violating process that has been proposed to clarify the nature of neutrino masses, has spawned an enormous world-wide experimental effort. Relating nuclear decay rates to high-energy, beyond the Standard Model (BSM) physics requires detailed knowledge of non-perturbative QCD effects. Using lattice QCD, we compute the necessary matrix elements of short-range operators, which arise due to heavy BSM mediators, that contribute to this decay via the leading order ππ+\pi^- \to \pi^+ exchange diagrams. Utilizing our result and taking advantage of effective field theory methods will allow for model-independent calculations of the relevant two-nucleon decay, which may then be used as input for nuclear many-body calculations of the relevant experimental decays. Contributions from short-range operators may prove to be equally important to, or even more important than, those from long-range Majorana neutrino exchange.

Keywords

Cite

@article{arxiv.1805.02634,
  title  = {Heavy physics contributions to neutrinoless double beta decay from QCD},
  author = {A. Nicholson and E. Berkowitz and H. Monge-Camacho and D. Brantley and N. Garron and C. C. Chang and E. Rinaldi and M. A. Clark and B. Joo and T. Kurth and B. Tiburzi and P. Vranas and A. Walker-Loud},
  journal= {arXiv preprint arXiv:1805.02634},
  year   = {2018}
}

Comments

Published version. Corrected missing term in chiral expansion, added supplemental material, updated references. The Jupyter notebook (DOI:10.5281/zenodo.1243313) accompanying this work can be found on github https://github.com/callat-qcd/project_0vbb

R2 v1 2026-06-23T01:47:31.254Z