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Chinmay Bera

Publications and source records attributed to Chinmay Bera.

4 recordsLinked to original sources

Probing new physics scenarios using high energy events at NOvA far detector

NuMI Off-axis $\nu_e$ Appearance (NOvA) experiment is an ongoing long baseline neutrino oscillation experiment. The primary channels of interest are the $\nu_e$, $\bar{\nu}_e$ appearance, $\nu_\mu$, $\bar{\nu}_\mu$ disappearance channels analyzed in the energy window $1< E_\nu < 4$ GeV. However, NOvA far detector sees non-trivial high energy $\nu_e$, $\bar{\nu}_e$ events in the energy range $4 < E_\nu < 20$ GeV. These high energy events provide us with an opportunity to investigate the subleading new physics scenarios. In this context, we study the sensitivity of the NOvA experiment to constrain the non-standard interaction (NSI) parameters and environmental decoherence. We observe that by including high energy events (signal + background) the degeneracy around $\epsilon_{e\tau} \sim 1.6$ can be removed throughout the $\delta_{CP}$ and $\delta_{e\tau}$ range. Further, we examine the role of signal versus beam background events in removing this degeneracy. In addition, we constrain the decoherence parameter $\Gamma$ considering events from $1<E_\nu<20$ GeV. Later, assuming the presence of decoherence in nature we obtain the allowed regions in $\theta_{23}$ and $\delta_{CP}$ plane.

hep-ph

The effect of non-standard interactions and environmental decoherence at DUNE

The Deep Underground Neutrino Experiment (DUNE) is a proposed long-baseline neutrino oscillation experiment that will project an on-axis wide-band neutrino beam over a distance of 1300 km to determine the unknowns in the neutrino sector. Given the baseline of 1300 km and the intense beam facility, DUNE is a promising experiment to study the sub-leading effects such as environmental decoherence, matter induced non-standard interactions (NSIs), neutrino decay, etc. In this study, we investigate how NSI and environmental decoherence affect the neutrino oscillation probabilities simultaneously. Considering the modified probabilities we obtain the updated mass hierarchy (MH) and CP violation (CPV) sensitivities of DUNE. Furthermore, we demonstrate the sensitivity of DUNE to distinguish between the effects of NSI and environmental decoherence.

hep-ph

Study of quantum decoherence at Protvino to ORCA experiment

Protvino to ORCA (Oscillation Research with Cosmics in the Abyss) (P2O) is an upcoming neutrino oscillation experiment with a very long baseline of 2595 km. Due to the substantial baseline, this experiment provides a unique opportunity to study the earth matter effects over very large distances. This makes it a suitable experiment to investigate the environmental decoherence in neutrino oscillations, where the neutrino system could interact with a stochastic environment and lead to a loss in the coherence of neutrino states. In this work, we consider an open quantum system framework to simulate the neutrino oscillations in P2O experiment and obtain bounds on the decoherence parameters in different phenomenological models. We assume that the decoherence parameter $Γ$ depends on neutrino energy $E_ν$ as $Γ_{ij}(E_ν) = Γ_{0} (\frac{E_ν}{E_0})^n$. Further, we use these bounds to study the effect on the neutrino mass ordering sensitivity and CP violation sensitivity of P2O experiment.

hep-ph

Exploring the nature of neutrinos in a dissipative environment

In this study, we explore the scope of determining the neutrino nature in long-baseline neutrino oscillation experiments considering the effect of environmental decoherence in neutrino evolution. Assuming an open quantum system framework, we numerically analyze the two flavor neutrino oscillation probabilities. We observe that the transition probabilities accommodate the Majorana phase in the presence of dissipative environment. Considering this phenomenology, we study the effect of Majorana phase on these probabilities and investigate the sensitivity of T2K, ESSnuSB, NOvA, T2HKK and DUNE to differentiate between Dirac and Majorana neutrinos.

hep-ph