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Perturbative treatment of nonlocal chiral interactions in auxiliary-field diffusion Monte Carlo calculations

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arxiv 2409.16365 v2 pith:2W62WORZ submitted 2024-09-24 nucl-th

Perturbative treatment of nonlocal chiral interactions in auxiliary-field diffusion Monte Carlo calculations

classification nucl-th
keywords interactionscalculationschiralmany-bodynonlocalnuclearapproachcarlo
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Nuclear many-body systems, ranging from nuclei to neutron stars, are some of the most interesting physical phenomena in our universe, and Quantum Monte Carlo (QMC) approaches are among the most accurate many-body methods currently available to study them. In recent decades, interactions derived from chiral effective field theory (EFT) have been widely adopted in the study of nuclear many-body systems. One drawback of the QMC approach is the requirement that the nuclear interactions need to be local, whereas chiral EFT interactions usually contain nonlocalities. In this work, we leverage the capability of computing second-order perturbative corrections to the ground-state energy in order to develop a self-consistent approach to including nonlocal operators in QMC calculations. We investigate both the deuteron and the neutron-matter equation of state in order to show the robustness of our technique, and pave the way for future QMC calculations at higher orders in the EFT, where nonlocal operators cannot be avoided.

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Cited by 2 Pith papers

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

  1. Perturbative calculations of light nuclei up to N$^3$LO in chiral effective field theory

    nucl-th 2026-04 unverdicted novelty 5.0

    Perturbative N3LO calculations in chiral EFT with RG-guided power counting yield robust predictions for light nuclei energies when calibrated on the tritium binding energy.

  2. Future directions in nuclear $\beta$ decay at FRIB and beyond

    nucl-th 2026-07 unverdicted

    A community white paper summarizing the current state and future directions of nuclear beta-decay studies at FRIB, with no new quantitative result.