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

机译:使用原子核进行新物理搜索的核物理见解:无中微子ββ衰变和暗物质直接检测

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Experiments using nuclei to probe new physics beyond the Standard Model, such as neutrinoless ββ 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 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 decays and dark matter interactions with a coupling to two nucleons, called two-nucleon currents.
机译:使用核来探测标准模型之外的新物理的实验,例如无中微子ββ衰变搜索,测试中微子是否是其自身的反粒子,以及旨在识别暗物质性质的直接检测实验,需要准确的核物理输入以优化其发现潜力,以及以正确解释其结果。这就要求对与这些过程有关的核结构有详细的了解。例如,无中微子的ββ衰变核矩阵元素对初始和最终核中的核相关性非常敏感,暗物质散射的自旋依赖性核结构因子取决于所有核子中核自旋的微妙分布。另外,核子是复合的并且相互作用很强,这意味着对于正确描述核及其相互作用,许多核子过程是必需的。因此,至关重要的是,理论研究和实验分析必须考虑β衰变和暗物质相互作用以及与两个核子(称为两个核子电流)的耦合。

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