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Shinya Fukasawa

Publications and source records attributed to Shinya Fukasawa.

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Sensitivity of the T2HKK experiment to the non-standard interaction

If the flavor dependent non-standard interactions (NSI) in neutrino propagation exist, then the matter effect is modified and the modification is parametrized by the dimensionless parameter $ε_{αβ}~(α,β=e, μ, τ)$. In this paper we discuss the sensitivity of the T2HKK experiment, whose possibility is now seriously discussed as a future extension of the T2K experiment, to such NSI. On the assumption that $ε_{αμ}=0~(α=e, μτ)$ and $ε_{ττ}=|ε_{eτ}|/(1+ε_{ee})$, which are satisfied by other experiments to a good approximation, we find that, among the possible off-axis flux configurations of $1.3^\circ$, $1.5^\circ$, $2.0^\circ$ and $2.5^\circ$, the case of the off-axis angle $1.3^\circ$ gives the highest sensitivity to $ε_{ee}$ and $|ε_{eτ}|$. Our results show that the $1.3^\circ$ off-axis configuration can exclude NSI for $|ε_{ee}|\gtrsim 1$ or $|ε_{eτ}|\gtrsim 0.2$ at 3$σ$. We also find that in the presence of NSI, T2HKK (for the off-axis angle $1.3^\circ$) has better sensitivity to the two CP phases ($δ_{CP}$ and arg($ε_{e τ}$)) than DUNE. This is because of the synergy between the two detectors i.e., one at Kamioka and one at Korea. T2HKK has better sensitivity to the CP phases than the atmospheric neutrino experiment at Hyperkamiokande in inverted hierarchy, but in normal hierarchy the atmospheric neutrino experiment has the best sensitivity to the CP phases.

hep-ph

Complementarity Between Hyperkamiokande and DUNE in Determining Neutrino Oscillation Parameters

In this work we investigate the sensitivity to the neutrino mass hierarchy, the octant of the mixing angle $θ_{23}$ and the CP phase $δ_{CP}$ in the future long-baseline experiments T2HK and DUNE as well as in the atmospheric neutrino observation at Hyperkamiokande (HK). We show for the first time that the sensitivity is enhanced greatly if we combine these three experiments. Our results show that the hierarchy sensitivity of both T2HK and HK are limited due to the presence of parameter degeneracy. But this degeneracy is removed when T2HK and HK are added together. With T2HK+HK (DUNE), the neutrino mass hierarchy can be determined at least at $ 5 σ$ (8 $σ$) C.L. for any value of true $δ_{CP}$. With T2HK+HK+DUNE the significance of the mass hierarchy increases to almost 15 $σ$ for the unfavorable value of $δ_{CP}$. For these combined setup, octant can be resolved except $43.5^\circ < θ_{23} < 48^\circ$ at $5σ$ C.L for both the hierarchies irrespective of the value of $δ_{CP}$. The significance of CP violation is around 10 $σ$ C.L. for $δ_{CP} \sim \pm 90^\circ$. Apart from that these combined facility has the capability to discover CP violation for at least $68\%$ fraction of the true $δ_{CP}$ values at $5 σ$ for any value of true $θ_{23}$. We also find that, with combination of all these three, the precision of $Δm^2_{\rm eff}$, $\sin^2θ_{23}$ and $δ_{CP}$ becomes 0.3%, 2% and 20% respectively. We also clarify how the octant degeneracy occurs in the HK atmospheric neutrino experiment.

hep-ph

Complementarity Between Hyperkamiokande and DUNE

In this talk we present our results on the sensitivity to the neutrino mass hierarchy, the octant of the mixing angle and the CP phase in the future long baseline experiments T2HK and DUNE as well as in the atmospheric neutrino observation at Hyperkamiokande (HK).

hep-ph

Sensitivity of atmospheric neutrino experiments to neutrino non-standard interactions

We study the sensitivity of atmospheric neutrino experiments to the neutrino non-standard interactions (NSI) which is motivated by the tension between the two mass squared differences extracted from the KamLAND and solar neutrino experiments. In this study the sensitivity of the future Hyper-Kamiokande experiments for 4438 days to NSI is shown. Assuming that the mass hierarchy is known, we find that the best-fit value from the solar neutrino and KamLAND data can be tested at more than 8 $σ$, while the one from the global analysis can be examined at 5.0 $σ$ (1.4 $σ$) for the normal (inverted) mass hierarchy.

hep-ph

Is nonstandard interaction a solution to the three neutrino tensions?

In this work we present a scenario in which a nonstandard interaction in neutrino propagation can explain the three major tensions in the neutrino oscillation data at present. These tensions are: (i) a non-zero best-fit value of the non-standard oscillation parameters in the the global analysis of the solar and KamLAND data which rules out the standard oscillation scenario at $90\%$ C.L, (ii) the measurement of the non-maximal value of $θ_{23}$ by NO$ν$A which excludes the maximal mixing at $2.5 σ$ C.L. and (iii) a discrepancy in the $θ_{13}$ measurement by T2K which has a tension with the reactor best-fit value of $\sin^2θ_{13}=0.021$ at $90\%$ C.L. Our results show that all these three above mentioned anomalies can be explained if one assumes the existence of the non-standard interactions in neutrino propagation with $θ_{23}=45^\circ$ and $\sin^2θ_{13}=0.021$ in the case of normal hierarchy. In our scenario the phase of $ε_{eτ}$ is zero and the most favorable value of the Dirac CP phase is approximately $255^\circ$.

hep-ph

The possibility to observe the non-standard interaction by the Hyperkamiokande atmospheric neutrino experiment

It was suggested that a tension between the mass-squared differences obtained from the solar neutrino and KamLAND experiments can be solved by introducing the non-standard flavor-dependent interaction in neutrino propagation. In this paper we discuss the possibility to test such a hypothesis by atmospheric neutrino observations at the future Hyper-Kamiokande experiment. Assuming that the mass hierarchy is known, we find that the best-fit value from the solar neutrino and KamLAND data can be tested at more than 8 $σ$, while the one from the global analysis can be examined at 5.0 $σ$ (1.4 $σ$) for the normal (inverted) mass hierarchy.

hep-ph

Constraints on the non-standard interaction in propagation from atmospheric neutrinos

The sensitivity of the atmospheric neutrino experiments to the non-standard flavor-dependent interaction in neutrino propagation is studied under the assumption that the only nonvanishing components of the non-standard matter effect are the electron and tau neutrino components $ε_{ee}$, $ε_{eτ}$, $ε_{ττ}$ and that the tau-tau component satisfies the constraint $ε_{ττ}=|ε_{eτ}|^2/(1+ε_{ee})$ which is suggested from the high energy behavior for atmospheric neutrino data. It is shown that the Superkamiokande (SK) data for 4438 days constrains $|\tanβ|\equiv|ε_{eτ}/(1+ε_{ee})|\lesssim 0.8$ at 2.5$σ$ (98.8\%) CL whereas the future Hyperkamiokande experiment for the same period of time as SK will constrain as $|\tanβ|\lesssim 0.3$ at 2.5$σ$CL from the energy rate analysis and the energy spectrum analysis will give even tighter bounds on $ε_{ee}$ and $|ε_{eτ}|$.

hep-ph

Search for Non-Standard Interactions by atmospheric neutrino

We investigate the effects of neutral current Non-Standard Interactions in propagation on atmospheric neutrino experiments such as Super-Kamiokande and Hyper-Kamiokande. With the ansatz where the parameters which have strong constraints from other experiments are neglected, we show how these experiments put constraints on the remaining parameters of the Non-Standard Interactions.

hep-ph