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Proton decay matrix elements on the lattice

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arxiv 1304.7424 v2 pith:H3AQN7HN submitted 2013-04-28 hep-lat hep-ph

classification hep-lathep-ph
keywords matrixprotonelementslatticerelevantchiraldecaydirect
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

Hadronic matrix elements of proton decay are essential ingredients to bridge the grand unification theory to low energy observables like proton lifetime. In this paper we non-perturbatively calculate the matrix elements, relevant for the process of a nucleon decaying into a pseudoscalar meson and an anti-lepton through generic baryon number violating four-fermi operators. Lattice QCD with 2+1 flavor dynamical domain-wall fermions with the {\it direct} method, which is direct measurement of matrix element from three-point function without chiral perturbation theory, are used for this study to have good control over the lattice discretization error, operator renormalization, and chiral extrapolation. The relevant form factors for possible transition process from an initial proton or neutron to a final pion or kaon induced by all types of three quark operators are obtained through three-point functions of (nucleon)-(three-quark operator)-(meson) with physical kinematics. In this study all the relevant systematic uncertainties of the form factors are taken into account for the first time, and the total error is found to be the range 30%-40% for $\pi$ and 20%-40% for $K$ final states.

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Cited by 2 Pith papers

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    Decaying composite dark matter in the 1 to 10 GeV mass range is most strongly constrained by AMS-02 positron data, needing lifetimes above roughly 10^26 seconds.

  2. 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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