Effective interactions for light nuclei: an effective (field theory) approach
arXiv:0912.3015 · doi:10.1088/0954-3899/37/6/064033
Abstract
One of the central open problems in nuclear physics is the construction of effective interactions suitable for many-body calculations. We discuss a recently developed approach to this problem, where one starts with an effective field theory containing only fermion fields and formulated directly in a no-core shell-model space. We present applications to light nuclei and to systems of a few atoms in a harmonic-oscillator trap. Future applications and extensions, as well as challenges, are also considered.
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Cited by in corpus (16)
- Nuclear effective field theory: status and perspectives
- Non-Empirical Interactions for the Nuclear Shell Model: An Update
- Efimov States in Nuclear and Particle Physics
- Universal properties of infrared oscillator basis extrapolations
- Towards grounding nuclear physics in QCD
- Lattice methods for strongly interacting many-body systems
- Nucleon-Nucleon Scattering in a Harmonic Potential
- The Theory of Parity Violation in Few-Nucleon Systems
- Three and Four Harmonically Trapped Particles in an Effective Field Theory Framework
- Two and Three Nucleons in a Trap and the Continuum Limit
- Effective field theory in the harmonic oscillator basis
- Gamow Shell Model description of Li isotopes and their mirror partners
- Chiral potential renormalized in harmonic-oscillator space
- Convergence Properties of the Effective Theory for Trapped Bosons
- Calculations for nuclear matter and finite nuclei within and beyond energy--density--functional theories through interactions guided by effective field theory
- Feasibility of perturbative generation of bound-states from resonances or virtual states