Search for proton decay via $p\rightarrow{e^+\eta}$ and $p\rightarrow{\mu^+\eta}$ with a 0.37 Mton-year exposure of Super-Kamiokande
Super-Kamiokande Collaboration: N. Taniuchi, K. Abe, S. Abe, Y., Asaoka, C. Bronner, M. Harada, Y. Hayato, K. Hiraide, K. Hosokawa, K. Ieki,, M. Ikeda, J. Kameda, Y. Kanemura, R. Kaneshima, Y. Kashiwagi, Y. Kataoka, S., Miki, S. Mine, M. Miura, S. Moriyama, M. Nakahata

TL;DR
This study searched for proton decay into specific lepton and eta meson modes using Super-Kamiokande data, setting new lower lifetime limits and improving model uncertainties compared to previous work.
Contribution
It introduces an improved model of the intranuclear eta interaction cross section, reducing uncertainties and increasing signal efficiency in proton decay searches.
Findings
No evidence of proton decay was observed.
Lower lifetime limits were set at 1.4×10^{34} and 7.3×10^{33} years.
Limits are the most stringent to date.
Abstract
A search for proton decay into and a meson has been performed using data from a 0.373 Mtonyear exposure (6050.3 live days) of Super-Kamiokande. Compared to previous searches this work introduces an improved model of the intranuclear interaction cross section, resulting in a factor of two reduction in uncertainties from this source and 10\% increase in signal efficiency. No significant data excess was found above the expected number of atmospheric neutrino background events resulting in no indication of proton decay into either mode. Lower limits on the proton partial lifetime of for and for at the 90 C.L. were set. These limits are around 1.5 times longer than our previous study and are the most stringent to date.
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Quantum Chromodynamics and Particle Interactions · Dark Matter and Cosmic Phenomena
