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Planck-scale Lorentz violation constrained by Ultra-High-Energy Cosmic Rays

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arxiv 0902.1756 v3 pith:QCK7G7GP submitted 2009-02-10 astro-ph.HE gr-qchep-ph

Planck-scale Lorentz violation constrained by Ultra-High-Energy Cosmic Rays

classification astro-ph.HE gr-qchep-ph
keywords dimensionplanckprotoncoefficientlorentzoperatorspionbelow
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We investigate the consequences of higher dimension Lorentz violating, CPT even kinetic operators that couple standard model fields to a non-zero vector field in an Effective Field Theory framework. Comparing the ultra-high energy cosmic ray spectrum reconstructed in the presence of such terms with data from the Pierre Auger observatory allows us to establish two sided bounds on the coefficients of the mass dimension five and six operators for the proton and pion. Our bounds imply that for both protons and pions, the energy scale of Lorentz symmetry breaking must be well above the Planck scale. In particular, the dimension five operators are constrained at the level of $10^{-3} M_{\rm Planck}^{-1}$. The magnitude of the dimension six proton coefficient is bounded at the level of $10^{-6} M_{Planck}^{-2}$ except in a narrow range where the pion and proton coefficients are both negative and nearly equal. In this small area, the magnitude of the dimension six proton coefficient must only be below $10^{-3} M_{\rm Planck}^{-2}$. Constraints on the dimension six pion coefficient are found to be much weaker, but still below $M_{\rm Planck}^{-2}$.

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  1. Bounds on Lorentz invariance violation from muon fluctuations at the Pierre Auger Observatory

    astro-ph.HE 2026-02 conditional novelty 6.0

    Muon-count fluctuations in Auger air showers exclude first-order Lorentz invariance violation in the hadronic sector down to η ≈ −1.3×10⁻⁶ at the highest confidence level reported.