English

Lattice QCD study of the $H$ dibaryon using hexaquark and two-baryon interpolators

High Energy Physics - Lattice 2019-04-17 v2 High Energy Physics - Phenomenology Nuclear Theory

Abstract

We present a lattice QCD spectroscopy study in the isospin singlet, strangeness 2-2 sectors relevant for the conjectured HH dibaryon. We employ both local and bilocal interpolating operators to isolate the ground state in the rest frame and in moving frames. Calculations are performed using two flavors of O(aa)-improved Wilson fermions and a quenched strange quark. Our initial point-source method for constructing correlators does not allow for bilocal operators at the source; nevertheless, results from using these operators at the sink indicate that they provide an improved overlap onto the ground state in comparison with the local operators. We also present results, in the rest frame, using a second method based on distillation to compute a hermitian matrix of correlators with bilocal operators at both the source and the sink. This method yields a much more precise and reliable determination of the ground-state energy. In the flavor-SU(3) symmetric case, we apply L\"uscher's finite-volume quantization condition to the rest-frame and moving-frame energy levels to determine the SS-wave scattering phase shift, near and below the two-particle threshold. For a pion mass of 960 MeV, we find that there exists a bound HH dibaryon with binding energy ΔE=(19±10){\Delta}E=(19\pm10) MeV. In the 27-plet (dineutron) sector, the finite-volume analysis suggests that the existence of a bound state is unlikely.

Keywords

Cite

@article{arxiv.1805.03966,
  title  = {Lattice QCD study of the $H$ dibaryon using hexaquark and two-baryon interpolators},
  author = {A. Francis and J. R. Green and P. M. Junnarkar and Ch. Miao and T. D. Rae and H. Wittig},
  journal= {arXiv preprint arXiv:1805.03966},
  year   = {2019}
}

Comments

17 pages, 12 figures, expanded discussion of fit ranges and single baryon energy levels, clarification of terminology; version published in Phys. Rev. D