Impact of high energy beam tunes on the sensitivities to the standard unknowns at DUNE
Jogesh Rout, Samiran Roy, Mehedi Masud, Mary Bishai, Poonam Mehta

TL;DR
This paper investigates how different high energy beam tunes at DUNE can improve the experiment's sensitivity to key unknowns in neutrino physics, including CP violation, mass hierarchy, and octant degeneracy, by optimizing beam and runtime configurations.
Contribution
It introduces the use of a medium energy beam at DUNE to enhance sensitivity to neutrino oscillation parameters and explores optimal beam and runtime combinations for improved results.
Findings
Medium energy beam improves sensitivity to neutrino parameters.
Optimal beam and runtime configuration enhances detection of CPV, MH, and octant.
Including $ u_{ au}$ channel adds valuable information.
Abstract
Even though neutrino oscillations have been conclusively established, there are a few unanswered questions pertaining to leptonic Charge Parity violation (CPV), mass hierarchy (MH) and octant degeneracy. Addressing these questions is of paramount importance at the current and future neutrino experiments including the Deep Underground Neutrino Experiment (DUNE) which has a baseline of 1300 km. In the standard mode, DUNE is expected to run with a {\textit{low energy}} (LE) tuned beam which peaks around the first oscillation maximum ( GeV) (and then sharply falls off as we go to higher energies). However, the wide band nature of the beam available at long baseline neutrino facility (LBNF) allows for the flexibility in utilizing beam tunes that are well-suited at higher energies as well. In this work, we utilize a beam that provides high statistics at higher energies…
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