Two-baryon systems from HAL QCD method and the mirage in the temporal correlation of the direct method
arXiv:1710.06147 · doi:10.1051/epjconf/201817505008
Abstract
Both direct and HAL QCD methods are currently used to study the hadron interactions in lattice QCD. In the direct method, the eigen-energy of two-particle is measured from the temporal correlation. Due to the contamination of excited states, however, the direct method suffers from the fake eigen-energy problem, which we call the "mirage problem," while the HAL QCD method can extract information from all elastic states by using the spatial correlation. In this work, we further investigate systematic uncertainties of the HAL QCD method such as the quark source operator dependence, the convergence of the derivative expansion of the non-local interaction kernel, and the single baryon saturation, which are found to be well controlled. We also confirm the consistency between the HAL QCD method and the Lüscher's finite volume formula. Based on the HAL QCD potential, we quantitatively confirm that the mirage plateau in the direct method is indeed caused by the contamination of excited states.
8 pages, 7 figures, Proceedings for the 35th International Symposium on Lattice Field Theory (Lattice 2017), Fig. 3 corrected, typo and legend corrected
References in corpus (6)
Cited by in corpus (8)
- FLAG Review 2019
- FLAG Review 2021
- Most Strange Dibaryon from Lattice QCD
- FLAG Review 2024
- Nuclear matrix elements from lattice QCD for electroweak and beyond-Standard-Model processes
- Consistency between Lüscher's finite volume method and HAL QCD method for two-baryon systems in lattice QCD
- Lattice QCD input for nuclear structure and reactions
- Comment on "Relation between scattering amplitude and Bethe-Salpeter wave function in quantum field theory"