English

Nuclear physics insights for new-physics searches using nuclei: Neutrinoless $\beta\beta$ decay and dark matter direct detection

Nuclear Theory 2017-03-28 v1 Cosmology and Nongalactic Astrophysics High Energy Physics - Experiment High Energy Physics - Phenomenology Nuclear Experiment

Abstract

Experiments using nuclei to probe new physics beyond the Standard Model, such as neutrinoless ββ\beta\beta decay searches testing whether neutrinos are their own antiparticle, and direct detection experiments aiming to identify the nature of dark matter, require accurate nuclear physics input for optimizing their discovery potential and for a correct interpretation of their results. This demands a detailed knowledge of the nuclear structure relevant for these processes. For instance, neutrinoless ββ\beta\beta decay nuclear matrix elements are very sensitive to the nuclear correlations in the initial and final nuclei, and the spin-dependent nuclear structure factors of dark matter scattering depend on the subtle distribution of the nuclear spin among all nucleons. In addition, nucleons are composite and strongly interacting, which implies that many-nucleon processes are necessary for a correct description of nuclei and their interactions. It is thus crucial that theoretical studies and experimental analyses consider β\beta decays and dark matter interactions with a coupling to two nucleons, called two-nucleon currents.

Keywords

Cite

@article{arxiv.1703.08921,
  title  = {Nuclear physics insights for new-physics searches using nuclei: Neutrinoless $\beta\beta$ decay and dark matter direct detection},
  author = {Javier Menéndez},
  journal= {arXiv preprint arXiv:1703.08921},
  year   = {2017}
}

Comments

11 pages, 5 figures, invited parallel talk at the XIIth Quark Confinement & the Hadron Spectrum conference, Thessaloniki, Greece, 2016