Mass varying neutrinos with different quintessence potentials
Sayan Mandal, Gennady Y. Chitov, Olga Avsajanishvili, Bijit Singha,, Tina Kahniashvili

TL;DR
This paper investigates how different quintessence potentials can produce mass-varying neutrinos that drive late-time cosmic acceleration, analyzing stability, fluctuations, and compatibility with observed dark energy behavior.
Contribution
It compares three quintessence potentials for mass-varying neutrinos, exploring their stability, fluctuation behavior, and implications for cosmic acceleration.
Findings
Inverse exponential and oscillating potentials generate appropriate neutrino masses.
Stable regimes exhibit positive sound speed and smooth cosmic acceleration.
Unstable regimes show growing neutrino density fluctuations and clustering.
Abstract
The mass-varying neutrino scenario is analyzed for three trial quintessence potentials (Ferreira-Joyce, inverse exponential, and thawing oscillating). The neutrino mass is generated via Yukawa coupling to the scalar field which represents dark energy. The inverse exponential and oscillating potentials are shown to successfully generate the neutrino masses in the range eV and to yield the current dark energy density in the regime of the late-time acceleration of the Universe. Depending on the choice of potentials, the acceleration could occur in two different regimes: (1) the regime of instability, and (2) the stable regime. The first regime of instability is after the Universe underwent a first-order transition and is rolling toward the new stable vacuum. The imaginary sound velocity in this regime implies growing fluctuations of the neutrino density…
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