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Quantum Monte Carlo Calculations of Light Nuclei Using Chiral Potentials

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arxiv 1406.2787 v2 pith:ZIY562WU submitted 2014-06-11 nucl-th nucl-ex

classification nucl-thnucl-ex
keywords carlochiralinteractionsmontecalculationsorderquantumbinding
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abstract

We present the first Green's function Monte Carlo calculations of light nuclei with nuclear interactions derived from chiral effective field theory up to next-to-next-to-leading order. Up to this order, the interactions can be constructed in a local form and are therefore amenable to quantum Monte Carlo calculations. We demonstrate a systematic improvement with each order for the binding energies of $A=3$ and $A=4$ systems. We also carry out the first few-body tests to study perturbative expansions of chiral potentials at different orders, finding that higher-order corrections are more perturbative for softer interactions. Our results confirm the necessity of a three-body force for correct reproduction of experimental binding energies and radii, and pave the way for studying few- and many-nucleon systems using quantum Monte Carlo methods with chiral interactions.

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Cited by 2 Pith papers

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

  1. Neural Quantum States for Light Nuclei with Chiral Two- and Three-Body Interactions

    nucl-th 2025-05 conditional novelty 6.0 of 10

    For hydrogen-3 with full N2LO chiral two- and three-body forces, a neural-network trial wave function trained by variational Monte Carlo reaches within 0.45% of the Green's Function Monte Carlo ground-state energy.

  2. Benchmark calculations of pure neutron matter with realistic nucleon-nucleon interactions

    nucl-th 2019-08 conditional novelty 6.0 of 10

    Benchmark neutron-matter calculations find that unconstrained auxiliary-field diffusion Monte Carlo agrees with Brueckner-Bethe-Goldstone theory, while constrained AFDMC overestimates the energy when spin-orbit forces...

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