论文标题
无菌中微子和中微子双β衰减在有效田间理论中
Sterile neutrinos and neutrinoless double beta decay in effective field theory
论文作者
论文摘要
我们研究了具有Majorana质量术语的无菌中微子在存在的情况下,研究中微子双β衰减($0νββ$)。这些量规字场可以通过可义的Yukawa耦合以及在标准模型有效的磁场理论中与无菌中微子扩展的标准模型有效场理论中的较高尺寸的量规算子相互作用。在GEV量表上,我们使用涉及无菌中微子的手性有效田间理论将夸克和振动水平的算子连接到涉及乳腺和核子的辐射相互作用。这使我们能够在各种同位素的$0νβ$速率上得出各种同位素的表达式,从相位空间因子,Hadronic低能量常数,核基质元件,中微子质量和高维操作员的Wilson系数。所需的耐药性低能常数和核基质元素取决于中微子的质量,为此,我们获得了基于QCD和手性扰动理论的插值公式,这些公式和手性扰动理论改善了仅在中微质量的小质量中有效的现有公式。最终的框架可直接用于评估$0νβ$实验对具有轻型无菌中微子方案的影响,并应证明对无菌 - 中性搜索的全球分析有用。我们在有或没有更高维操作员的无菌中微子的情况下对$0νβ$进行了几项现象学研究。我们发现,涉及无菌中微子的非标准相互作用对$0νβ$现象学具有巨大的影响,下一代实验可以探究此类相互作用,直至$ \ Mathcal O(100)$ TEV的尺度。
We investigate neutrinoless double beta decay ($0νββ$) in the presence of sterile neutrinos with Majorana mass terms. These gauge-singlet fields are allowed to interact with Standard-Model (SM) fields via renormalizable Yukawa couplings as well as higher-dimensional gauge-invariant operators up to dimension seven in the Standard Model Effective Field Theory extended with sterile neutrinos. At the GeV scale, we use Chiral effective field theory involving sterile neutrinos to connect the operators at the level of quarks and gluons to hadronic interactions involving pions and nucleons. This allows us to derive an expression for $0νββ$ rates for various isotopes in terms of phase-space factors, hadronic low-energy constants, nuclear matrix elements, the neutrino masses, and the Wilson coefficients of higher-dimensional operators. The needed hadronic low-energy constants and nuclear matrix elements depend on the neutrino masses, for which we obtain interpolation formulae grounded in QCD and chiral perturbation theory that improve existing formulae that are only valid in a small regime of neutrino masses. The resulting framework can be used directly to assess the impact of $0νββ$ experiments on scenarios with light sterile neutrinos and should prove useful in global analyses of sterile-neutrino searches. We perform several phenomenological studies of $0νββ$ in the presence of sterile neutrinos with and without higher-dimensional operators. We find that non-standard interactions involving sterile neutrinos have a dramatic impact on $0νββ$ phenomenology, and next-generation experiments can probe such interactions up to scales of $\mathcal O(100)$ TeV.