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AMEND: A Model Explaining Neutrino masses and Dark matter testable at the LHC and MEG

机译:修正:解释中微子质量和暗物质的模型,可在大型强子对撞机和MEG上测试

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摘要

Despite being very successful in explaining the wide range of precision experimental results obtained so far, the Standard Model (SM) of elementary particles fails to address two of the greatest observations of the recent decades: tiny but nonzero neutrino masses and the well-known problem of missing mass in the Universe. Typically the new models beyond the SM explain only one of these observations. Instead, in the present article, we take the view that they both point towards the same new extension of the Standard Model. The new particles introduced are responsible simultaneously for neutrino masses and for the dark matter of the Universe. The stability of dark matter and the smallness of neutrino masses are guaranteed by a U(1) global symmetry, broken to a remnant mathbbZ2 {mathbb{Z}_2} . The canonical seesaw mechanism is forbidden and neutrino masses emerge at the loop level being further suppressed by the small explicit breaking of the U(1) symmetry. The new particles and interactions are invoked at the electroweak scale and lead to rich phenomenology in colliders, in lepton flavour violating rare decays and in direct and indirect dark matter searches, making the model testable in the coming future.
机译:尽管在解释迄今为止获得的广泛的精确实验结果方面非常成功,但是基本粒子的标准模型(SM)仍无法解决近几十年来的两个重大发现:微小但非零的中微子质量以及众所周知的问题在宇宙中缺少质量。通常,SM以外的新模型只能解释这些观察结果之一。相反,在本文中,我们认为它们都指向标准模型的同一新扩展。引入的新粒子同时负责中微子质量和宇宙暗物质。 U(1)全局对称性(打破为剩余的mathbbZ 2 {mathbb {Z} _2})可确保暗物质的稳定性和中微子质量的较小性。规范的跷跷板机制是被禁止的,中微子质量在回路水平出现,并通过较小的U(1)对称性的显式破坏而进一步受到抑制。新的粒子和相互作用在电弱尺度上被调用,并导致对撞机中丰富的现象学,违反稀有衰变的轻子风味以及直接和间接暗物质搜索,从而使该模型在未来可测试。

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