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Equilibration of quantum many-body fast neutrino flavor oscillations

Neutrino gases are expected to form in high density astrophysical environments, and accurately modeling their flavor evolution is critical to understanding such environments. In this work we study a simplified model of such a dense neutrino gas in the regime for which neutrino-neutrino coherent forward scattering is the dominant mechanism contributing to the flavor evolution. We show evidence that the generic potential induced by this effect is non-integrable and that the statistics of its energy level spaces are in good agreement with the Wigner surmise. We also find that individual neutrinos rapidly entangle with all of the others present which results in an equilibration of the flavor content of individual neutrinos. We show that the average neutrino flavor content can be predicted utilizing a thermodynamic partition function. A random phase approximation to the evolution gives a simple picture of this equilibration. In the case of neutrinos and antineutrinos, processes like $ν_e {\barν}_e \leftrightarrows ν_μ{\barν_μ} $ yield a rapid equilibrium satisfying $n( ν_e) n({\bar ν}_e) = n( ν_μ) n({\bar ν}_μ) = n( ν_τ) n({\bar ν}_τ)$ in addition to the standard lepton number conservation in regimes where off-diagonal vacuum oscillations are small compared to $ν-ν$ interactions.

preprint2024arXivOpen access
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