Consequences of increased hypertriton binding for -shell -hypernuclear systems
arXiv:2108.13900 · doi:10.1103/PhysRevC.105.015202
Abstract
Consequences of increasing the binding energy of the hypertriton ground state from the emulsion value =0.130.05 MeV to the STAR value MeV are studied for -shell hypernuclei within a pionless EFT approach at leading order, constrained by the binding energies of the and states. The stochastic variational method is used in bound-state calculations, whereas the inverse analytic continuation in the coupling constant method is used to locate -matrix poles of continuum states. It is found that the resonance becomes broader and less likely to be observed experimentally, whereas the spin-flip virtual state moves closer to the threshold to become a shallow bound state for specific interaction strengths. The effect of such a near-threshold state on femtoscopic studies of -deuteron correlations, and its lifetime if bound, are discussed. Increasing moderately, up to 0.5 MeV, hardly affects calculated values of .
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