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Grand Unification and Intermediate Scale Supersymmetry

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arxiv 1312.6695 v3 pith:B4ZDCGGQ submitted 2013-12-23 hep-ph hep-th

classification hep-phhep-th
keywords sigmatildedarkmatterunificationcouplingscaledecay
verification ladder T0 review T1 audit T2 compute T3 formal

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With minimal field content and for an interesting range of the supersymmetric Higgs mixing parameter, 0.5 < tan^2 \beta < 2, the superpartner mass scale, \tilde{m}, is found to be at the intermediate scale, ~ 10^{10 \pm 1} GeV, near where the Standard Model Higgs quartic coupling passes through zero. For any 4d supersymmetric grand unified symmetry spontaneously broken by a vacuum expectation value <\Sigma>, if superpotential interactions for \Sigma are forbidden e.g. by R symmetries, the uneaten color octet, \Sigma_8, and weak triplet, \Sigma_3, have masses of order \tilde{m}. The combination of superpartner and \Sigma_{8,3} states leads to successful gauge coupling unification, removing the disastrously high proton decay rate of minimal Standard Model unification. Proton decay could be seen in future experiments if \tilde{m} ~ 10^{11} GeV, but not if it is lower. If the reheating temperature after inflation, T_R, is less than \tilde{m} dark matter may be axions. If T_R > \tilde{m}, thermal LSP dark matter may lead to the environmental selection of a TeV-scale LSP, either wino or Higgsino, which could comprise all or just one component of dark matter. In the Higgsino case, the dark matter is found to behave inelastically in direct detection experiments, and gauge coupling unification occurs accurately without the need of any threshold corrections.

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  1. Dark Matter, Dark Radiation and Gravitational Waves from Mirror Higgs Parity

    hep-ph 2019-08 conditional novelty 6.0 of 10

    A fully mirrored Standard Model can explain dark matter as mirror electrons while predicting dark radiation and gravitational wave signals tied to measured particle masses.

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