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Bino-wino coannihilation as a prediction in the $E_7$ unification of families

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arxiv 1907.07168 v2 pith:6IQ4M6ZV submitted 2019-07-16 hep-ph astro-ph.COgr-qchep-ex

classification hep-phastro-ph.COgr-qchep-ex
keywords susybino-winocoannihilationcouplingsfamiliesmassmultipletspredicted
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abstract

We study the phenomenological consequences of the supersymmetric (SUSY) $E_7/SU(5)\times U(1)^3$ non-linear sigma model coupled to supergravity, where the three generations of quark and lepton chiral multiplets appear as (pseudo) Nambu Goldstone (NG) multiplets, that is, the origin of the three families is explained. To break SUSY, we introduce a SUSY breaking field charged under some symmetry avoiding the Polonyi problem. The gaugino mass spectrum is almost uniquely determined when one requires the electroweak vacuum to be (meta)stable: it would be a miracle that the mass difference between the bino and wino turns out to be within $O(1)\%$ at the low energy. Thus, a bino-wino coannihilation is naturally predicted, which can explain the correct relic abundance of dark matter. Moreover, we find that the bottom-tau Yukawa couplings and the gauge couplings are unified up to $O(1)\%$ in most of the viable region. This scenario can be fully tested at the LHC and future collider experiments since the gauginos and some of the pseudo-NG bosons are light. An axion-like multiplet, which can be identified with the QCD axion, is also predicted.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. QCD Axion on Hilltop by a Phase Shift of $\pi$

    hep-ph 2019-08 conditional novelty 5.0 of 10

    A heavy axion inflaton can shift the QCD axion potential by π, placing the QCD axion at the hilltop and allowing f_a ≳ 3×10^9 GeV to explain all dark matter.

  2. On the coverage of neutralino dark matter in coannihilations at the upgraded LHC

    hep-ph 2019-08 conditional novelty 4.0 of 10

    Projected HE-LHC searches could rule out neutralino dark matter up to 2.6, 1.7, and 0.8 TeV in gluino, stop, and wino coannihilation scenarios, but not in stau coannihilation.

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