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Leptogenesis in Parity Solutions to the Strong CP Problem and Standard Model Parameters

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arxiv 2307.15731 v1 pith:MCYTFVAT submitted 2023-07-28 hep-ph

Leptogenesis in Parity Solutions to the Strong CP Problem and Standard Model Parameters

classification hep-ph
keywords leptogenesisparityneutrinosparametersright-handedboundbreakingfuture
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study the simplest theories with exact spacetime parity that solve the strong CP problem and successfully generate the cosmological baryon asymmetry via decays of right-handed neutrinos. Lower bounds are derived for the masses of the right-handed neutrinos and for the scale of spontaneous parity breaking, $v_R$. For generic thermal leptogenesis, $v_R \gtrsim 10^{12}$ GeV, unless the small observed neutrino masses arise from fine-tuning. We compute $v_R$ in terms of the top quark mass, the QCD coupling, and the Higgs boson mass and find this bound is consistent with current data at $1 \sigma$. Future precision measurements of these parameters may provide support for the theory or, if $v_R$ is determined to be below $10^{12}$ GeV, force modifications. However, modified cosmologies do not easily allow reductions in $v_R$ -- no reduction is possible if leptogenesis occurs in the collisions of domain walls formed at parity breaking, and at most a factor 10 reduction is possible with non-thermal leptogenesis. Standard Model parameters that yield low values for $v_R$ can only be accommodated by having a high degree of degeneracy among the right-handed neutrinos involved in leptogenesis. If future precision measurements determine $v_R$ to be above $10^{12}$ GeV, it is likely that higher-dimensional operators of the theory will yield a neutron electric dipole moment accessible to ongoing experiments. This is especially true in a simple UV completion of the neutrino sector, involving gauge singlet fermions, where the bound from successful leptogenesis is strengthened to $v_R \gtrsim 10^{13}$ GeV.

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Cited by 3 Pith papers

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  1. Accidentally Stable Dark Matter in a Parity Solution to the Strong CP Problem

    hep-ph 2026-07 conditional novelty 6.0

    SU(2)_L×SU(2)_R bi-triplet fermions are accidentally stable dark matter in a parity solution to strong CP, with relic abundance forcing v_R ≲ 150 TeV.

  2. Accidental Peccei-Quinn Symmetry from Chiral Gauge Symmetry and Mirror QCD

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    A chiral U(1) gauge symmetry generates an accidental Peccei-Quinn symmetry broken by mirror QCD, solving the strong CP problem without a light axion while supplying WIMP dark matter, stochastic gravitational waves, an...

  3. Lepton number violating signals of a parity symmetric model at $\mu$TRISTAN

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    In a parity-symmetric model with TeV-scale lepton number violation, a 10 TeV μ+μ+ collider can probe W' boson masses up to 16 TeV via on-shell and off-shell lepton number violating production.