High Statistics Analysis using Anisotropic Clover Lattices: (II) Three-Baryon Systems
Silas R. Beane, William Detmold, Thomas C Luu, Kostas Orginos,, Assumpta Parreno, Martin J. Savage, Aaron Torok, Andre Walker-Loud

TL;DR
This study performs a high-statistics Lattice QCD calculation of a three-baryon system, specifically the $ ext{ extXi}^0 ext{ extXi}^0 n$, demonstrating the feasibility of analyzing multi-baryon interactions with improved signal-to-noise characteristics.
Contribution
It introduces a high-statistics lattice approach to three-baryon systems, focusing on the $ ext{ extXi}^0 ext{ extXi}^0 n$ system, and shows potential for studying larger multi-baryon systems.
Findings
Ground state energy of the system was determined with high precision.
Signal-to-noise ratio remains manageable at large times due to operator overlap.
Initial results for a triton-like system suggest future studies of light nuclei.
Abstract
We present the results of an exploratory Lattice QCD calculation of three-baryon systems through a high-statistics study of one ensemble of anisotropic clover gauge-field configurations with a pion mass of m_\pi ~ 390 MeV. Because of the computational cost of the necessary contractions, we focus on correlation functions generated by interpolating-operators with the quantum numbers of the system, one of the least demanding three baryon systems in terms of the number of contractions. We find that the ground state of this system has an energy of E_{\Xi^0\Xi^0n}= 3877.9\pm 6.9\pm 9.2\pm3.3 MeV corresponding to an energy-shift due to interactions of \delta E_{\Xi^0\Xi^0n}=E_{\Xi^0\Xi^0n}-2M_{\Xi^0} -M_n=4.6\pm 5.0\pm 7.9\pm 4.2 MeV. There are a significant number of time-slices in the three-baryon correlation function for which the signal-to-noise ratio is only slowly…
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