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A variational study of two-nucleon systems with lattice QCD

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arxiv 2108.10835 v4 pith:VAH5DEKA submitted 2021-08-24 hep-lat hep-phnucl-th

classification hep-lathep-phnucl-th
keywords two-nucleonoperatorsvariationalenergylow-energymethodsobtainedquark
verification ladder T0 review T1 audit T2 compute T3 formal
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The low-energy spectrum and scattering of two-nucleon systems are studied with lattice quantum chromodynamics using a variational approach. A wide range of interpolating operators are used: dibaryon operators built from products of plane-wave nucleons, hexaquark operators built from six localized quarks, and quasi-local operators inspired by two-nucleon bound-state wavefunctions in low-energy effective theories. Sparsening techniques are used to compute the timeslice-to-all quark propagators required to form correlation-function matrices using products of these operators. Projection of these matrices onto irreducible representations of the cubic group, including spin-orbit coupling, is detailed. Variational methods are applied to constrain the low-energy spectra of two-nucleon systems in a single finite volume with quark masses corresponding to a pion mass of 806 MeV. Results for S- and D-wave phase shifts in the isospin singlet and triplet channels are obtained under the assumption that partial-wave mixing is negligible. Tests of interpolating-operator dependence are used to investigate the reliability of the energy spectra obtained and highlight both the strengths and weaknesses of variational methods. These studies and comparisons to previous studies using the same gauge-field ensemble demonstrate that interpolating-operator dependence can lead to significant effects on the two-nucleon energy spectra obtained using both variational and non-variational methods, including missing energy levels and other discrepancies. While this study is inconclusive regarding the presence of two-nucleon bound states at this quark mass, it provides robust upper bounds on two-nucleon energy levels that can be improved in future calculations using additional interpolating operators and is therefore a step toward reliable nuclear spectroscopy from the underlying Standard Model of particle physics.

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Cited by 5 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Two-nucleon systems at $m_{\pi}\approx292$ MeV from lattice QCD

    hep-lat 2026-05 conditional novelty 6.0 of 10

    Lattice QCD at m_pi≈292 MeV finds virtual poles in the ^3S1 and ^1S0 NN channels with binding energies 6^{+5}_{-3} MeV and 11^{+6}_{-5} MeV, extracted via Lüscher and NPHF analyses.

  2. Lattice QCD Study of Positive Parity Dibaryons with Maximal Charm and Strangeness

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    Lattice QCD finds the Omega_ccc-Omega_ccc dibaryon likely bound by about 45 MeV in the spin-0 channel, Omega-Omega near threshold, and both spin-2 systems unbound.

  3. Wavefunction-based operator optimization for two-hadron systems in lattice QCD

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    Wavefunction-based operator optimization with Z3-noise smearing isolates two nearly degenerate two-hadron states in lattice QCD, demonstrated on Omega_ccc Omega_ccc.

  4. Analytic decomposition of two-body electroweak processes with left-hand cuts

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    An on-shell decomposition of 2+J o2 electroweak amplitudes isolates OPE poles, logs, and triangle singularities, leaving only smooth short-distance functions.

  5. Diffusion Monte Carlo study of deuteron-like fully light hexaquarks

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    Within the AL1 constituent-quark model, compact uuuddd hexaquarks lie well above baryon–baryon thresholds while dibaryon-like states are near-threshold molecular candidates, one deuteron-like but unbound by ~12 MeV.

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