Exotic Bs mesons in the continuum from a nonperturbatively-tuned heavy quark action
R. J. Hudspith, Daniel Mohler, M. Stolz
Abstract
In this work we predict the masses and binding energies of two Bs exotic-meson candidates using Lattice QCD, namely the Bs0* and Bs1. We use a relativistic heavy-quark action for the valence b-quark in our simulations, tuned fully non-perturbatively by a neural network. This allows us to take the continuum limit and eliminates the largest systematic we attributed to our previous determination of these states using Lattice-NRQCD. This is the first Lattice QCD study to show that these states remain deeply bound in the continuum limit. We thoroughly benchmark our heavy-quark approach by reproducing the experimental values of the 1S hyperfine splittings of B and Bs mesons, as well as the mass splitting between the B and Bs mesons. Our final results yield binding energies with respect to the BK and B*K thresholds of -65.9(6.0)(3.0)Iso MeV and -60.6(6.6)(3.0)Iso(1.0)GEVP MeV for the Bs0* and Bs1 respectively.
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