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arXiv · 2510.02972

Flavor Imprints on Novel Low Mass Dark Matter

Abstract

We present a Majorana scotogenic-like loop framework in which neutrino mass generation and dark matter stability are intrinsically connected to the breaking of the discrete flavor symmetry $A_4$. This breaking leads to the emergence of the scoto-seesaw mechanism and a $Z_2$ symmetry. This naturally explains the solar and atmospheric mass-squared differences, $Δm_{sol}^{2}$ and $Δm_{atm}^{2}$, while simultaneously ensuring dark matter stability. Our model accommodates normal ordering of neutrino masses, with a generalized $μ$-$τ$ reflection symmetry shaping the structure of leptonic mixing and a lower limit on the lightest neutrino mass. Moreover, the model provides predictions for the octant of $θ_{23}$ and a strong correlation between $Δm_{sol}^{2}$ and $Δm_{atm}^{2}$. This correlation puts a lower bound on the fermionic DM mass. In contrast, scalar dark matter remains viable over a broad mass spectrum. A notable feature is that the low mass regime ($\sim 15$ GeV onwards) survives owing to the presence of efficient co-annihilation channels, which are typically absent in the Majorana scotogenic scenario. Additionally, the model aligns with current and future limits from lepton flavor violation experiments.

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Ranjeet Kumar, Hemant Kumar Prajapati, Rahul Srivastava, Sushant Yadav. 2025-11-24. Flavor Imprints on Novel Low Mass Dark Matter. https://doi.org/10.1007/jhep11(2025)094

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