arXiv · 2605.07258
$\Xi$-deuteron low-energy $s$-wave phase shifts and momentum correlation functions in Faddeev formulation
Abstract
The low-energy $\Xi$-deuteron scattering is investigated through the solution of Faddeev equations, employing three sets of the currently available representation of the $\Xi$-nucleon interactions. One of these is the chiral NLO interaction specified by the J\"{u}lich group, and the other two are based on the calculations by the HAL-QCD method. The $s$-wave phase shifts in the $J=3/2$ and $J=1/2$ states are presented. Three-body wave functions in coordinate space are constructed from the Faddeev amplitudes in momentum space. These functions are used in the calculation of $\Xi d$ momentum correlation functions. The effects of the deuteron breakup are significant in the $J=3/2$ channel. The differences in the magnitude of the calculated correlation function show the quantitative difference of the $\Xi N$ interactions in the spin-isospin channels. The prospective experimental data on the $\Xi d$ momentum correlation function could contribute to a better description of the $\Xi N$ interactions.
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M. Kohno, H. Kamada. 2026-05-08. $\Xi$-deuteron low-energy $s$-wave phase shifts and momentum correlation functions in Faddeev formulation. https://doi.org/10.1103/rxh5-w9xk
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