Universal Correlations in Pion-less EFT with the Resonating Group Model: Three and Four Nucleons
Johannes Kirscher, Harald W. Griesshammer (George Washington U.),, Deepshikha Shukla (George Washington U., U. of North Carolina), Hartmut M., Hofmann (U. Erlangen-Nuernberg)

TL;DR
This study applies pion-less effective field theory at next-to-leading order to analyze universal properties of three- and four-nucleon systems, confirming correlations and demonstrating the theory's convergence without needing a four-nucleon force.
Contribution
It provides the first detailed NLO analysis of 3- and 4-nucleon systems using the Resonating Group Method, confirming known correlations and showing no four-nucleon force is required at this order.
Findings
Confirmed the correlation between 3He-neutron scattering length and 3H binding energy.
Predicted charge radius of 3H as 1.6±0.2 fm.
Predicted 4He binding energy as 28±2.5 MeV.
Abstract
The Effective Field Theory "without pions" at next-to-leading order is used to analyze universal bound state and scattering properties of the 3- and 4-nucleon system. Results of a variety of phase shift equivalent nuclear potentials are presented for bound state properties of 3H and 4He, and for the singlet S-wave 3He-neutron scattering length a_0(3He-n). The calculations are performed with the Refined Resonating Group Method and include a full treatment of the Coulomb interaction and the leading-order 3-nucleon interaction. The results compare favorably with data and values from AV18(+UIX) model calculations. A new correlation between a_0(3He-n) and the 3H binding energy is found. Furthermore, we confirm at next-to-leading order the correlations, already found at leading-order, between the 3H binding energy and the 3H charge radius, and the Tjon line. With the 3H binding energy as…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Nuclear physics research studies · Quantum, superfluid, helium dynamics
