Abstract

If dark energy (DE) is a dynamical field rather than a cosmological constant, an interaction between DE and the neutrino sector could exist, modifying the neutrino oscillation phenomenology and causing CP and apparent Lorentz violating effects. The terms in the Hamiltonian for flavor propagation induced by the DE-neutrino coupling do not depend on the neutrino energy, while the ordinary components decrease as $\Delta m^2/E_{\nu}$. Therefore, the DE-induced effects are absent at lower neutrino energies, but become significant at higher energies, allowing to be searched for by neutrino observatories. We explore the impact of the DE-neutrino coupling on the oscillation probability and the flavor transition in the three-flavor framework, and investigate the CP-violating and apparent Lorentz violating effects. We find that DE-induced effects become observable for $E_{\nu}m_{\text{eff}} \sim 10^{-20}~ \text{GeV}^2$, where $m_{\rm eff}$ is the effective mass parameter in the DE-induced oscillation probability, and CP is violated over a wide energy range. We also show that current and future experiments have the sensitivity to detect anomalous effects induced by a DE-neutrino coupling and probe the new mixing parameters. The DE-induced effects on neutrino oscillation can be distinguished from other new physics possibilities with similar effects, through the detection of the directional dependence of the interaction, which is specific to this interaction with DE. However, current experiments will not yet be able to measure the small changes of $\sim 0.03\%$ in the flavor composition due to this directional effect.

Highlights

  • Dark energy (DE) is a well established hypothesis in cosmology, being the driving force behind the accelerated expansion of the Universe

  • In the case that there is no new physics, the expected flavor composition measured at detection is approximately 1∶1∶1 as shown as the “cross” symbol

  • We are only at the beginning stage of collecting data from high energy neutrinos, and exciting times lie ahead. It will not take long before IceCube and KM3NeT will determine if the measured flavor ratio at Earth is compatible with normal physics

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Summary

INTRODUCTION

Dark energy (DE) is a well established hypothesis in cosmology, being the driving force behind the accelerated expansion of the Universe. Rise to an effective potential, which engenders an effect on neutrino oscillations that influences the evolution equation in a way that one could compare with the MikheyevSmirnov-Wolfenstein (MSW) effect that occurs when neutrinos propagate through matter [6,7,8,9] This interaction will change the oscillation probability, and has an impact on the flavor ratios of the neutrinos detected at Earth. Since we as observers are not in the cosmic-microwavebackground (CMB) rest frame, the effect of the DEneutrino interaction does depend on the propagation direction of the neutrinos This CPT and Lorentz violating coupling has been studied before in Ref. In this paper we study the impact of the possible DE-neutrino coupling on the flavor composition of high-energy extraterrestrial neutrinos and the consequences of this interaction for current and future experiments.

Dark energy-neutrino interaction
Behavior of the probability
Sensitivity
Directional dependence
CONCLUSION
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