Search for an anomalous excess of inclusive charged-current $\nu_e$ interactions in the MicroBooNE experiment using Wire-Cell reconstruction
MicroBooNE collaboration: P. Abratenko, R. An, J. Anthony, L., Arellano, J. Asaadi, A. Ashkenazi, S. Balasubramanian, B. Baller, C. Barnes,, G. Barr, V. Basque, L. Bathe-Peters, O. Benevides Rodrigues, S. Berkman, A., Bhanderi, A. Bhat, M. Bishai, A. Blake, T. Bolton, J.Y. Book

TL;DR
This study searches for an excess of electron neutrino interactions in MicroBooNE to investigate the MiniBooNE low-energy excess, finding no significant excess and setting limits on the signal strength with implications for neutrino physics.
Contribution
It introduces a Wire-Cell reconstruction-based analysis of MicroBooNE data to constrain the MiniBooNE low-energy excess hypothesis, providing new limits on the excess signal.
Findings
No significant excess observed; best-fit signal strength is zero.
The MiniBooNE excess hypothesis is rejected at 3.75σ.
The data disfavors the MiniBooNE excess explanation at over 2.6σ.
Abstract
We report a search for an anomalous excess of inclusive charged-current (CC) interactions using the Wire-Cell event reconstruction package in the MicroBooNE experiment, which is motivated by the previous observation of a low-energy excess (LEE) of electromagnetic events from the MiniBooNE experiment. With a single liquid argon time projection chamber detector, the measurements of CC interactions as well as interactions are used to constrain signal and background predictions of CC interactions. A data set collected from February 2016 to July 2018 corresponding to an exposure of 6.369 10 protons on target from the Booster Neutrino Beam at FNAL is analyzed. With representing an overall normalization factor and referred to as the LEE strength parameter, we select 56 fully contained CC candidates while expecting 69.6 8.0…
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