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February 12, 2026Acta Physica Polonica B0 citationsOpen Access

Low-lying Baryon Resonances from Lattice QCD

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CMC. MorningstarCarnegie Mellon University

Key Points

  • This research aims to calculate the properties of baryon resonances using lattice quantum chromodynamics (QCD).
  • Formulated quantum chromodynamics on a space-time lattice in imaginary time.
  • Used a Markov-chain Monte Carlo method with importance sampling for non-perturbative computations.
  • Extracted energies of stationary states from temporal correlations in finite volume.
  • Applied a quantization condition involving the scattering k-matrix and box matrix.
  • Identified best-fit values of the scattering k-matrix parameters matching Monte Carlo spectrum.
  • Results for the Δ resonance revealed distinct properties.
  • Outlined scattering study indicating a two-pole structure near the Λ(1405) resonance.

Abstract

Calculating the properties of baryon resonances from quantum chromodynamics requires evaluating the temporal correlations between hadronic operators using integrations over field configurations weighted by a phase associated with the action. By formulating quantum chromodynamics on a space-time lattice in imaginary time, such integrations can be carried out non-perturbatively using a Markov-chain Monte Carlo method with importance sampling. The energies of stationary states in the finite volume of the lattice can be extracted from the temporal correlations. A quantization condition involving the scattering \ (K\) -matrix and a complicated “box matrix” also yields a finite-volume energy spectrum. By appropriately parametrizing the scattering \ (K\) -matrix, the best-fit values of the \ (K\) -matrix parameters are those that produce a finite-volume spectrum which most closely matches that obtained from the Monte Carlo computations. Results for the \ (\) resonance are presented, and a study of scattering for energies near the \ ( (1405) \) resonance is outlined, showing a two-pole structure. The prospects for applying this methodology to the Roper resonance are discussed. Abstract Published by the Jagiellonian University 2026 authors

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Cite This Study

C. Morningstar (2026) studied this question.

synapsesocial.com/papers/698d6de45be6419ac0d532a5https://doi.org/10.5506/aphyspolb.57.2-a10
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