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Nuclear forces from chiral Lagrangians using the method of unitary transformation II: The two-nucleon system

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arxiv nucl-th/9910064 v1 pith:7HFF7IPL submitted 1999-10-26 nucl-th hep-ph

Nuclear forces from chiral Lagrangians using the method of unitary transformation II: The two-nucleon system

classification nucl-th hep-ph
keywords chiralenergiesbelowcontactdescribeddeterminedexchangehigher
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We employ the chiral nucleon-nucleon potential derived in ref.[1] to study bound and scattering states in the two-nucleon system. At next-to-leading order, this potential is the sum of renormalized one-pion and two-pion exchange and contact interactions. At next-to-next-to-leading order, we have additional chiral two-pion exchange with low-energy constants determined from pion-nucleon scattering. Alternatively, we consider the \Delta(1232) as an explicit degree of freedom in the effective field theory. The nine parameters related to the contact interactions can be determined by a fit to the np S- and P-waves and the mixing parameter \epsilon_1 for laboratory energies below 100 MeV. The predicted phase shifts and mixing parameters for higher energies and higher angular momenta are mostly well described for energies below 300 MeV. The S-waves are described as precisely as in modern phenomenological potentials. We find a good description of the deuteron properties.

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Cited by 3 Pith papers

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    Chiral EFT predictions at N2LO for the tritium Gamow-Teller matrix element, with parameters fixed from scattering, overestimate the empirical value and indicate large higher-order corrections.

  2. Nucleon-nucleon scattering up to next-to-leading order in manifestly Lorentz-invariant chiral effective field theory: low phases and the deuteron

    nucl-th 2025-10 unverdicted novelty 5.0

    The manifestly Lorentz-invariant chiral EFT potential at NLO, treated non-perturbatively, yields a reasonable description of low-energy NN phase shifts and deuteron properties.

  3. Can the strong interactions between hadrons be determined using femtoscopy?

    nucl-th 2025-04 unverdicted novelty 3.0

    The universality assumption in the Koonin-Pratt formula for femtoscopic correlations introduces potentially large intrinsic uncertainty when extracting strong interactions between hadrons like nucleons.