Towards consistent nuclear interactions from chiral Lagrangians I: The path-integral approach
Hermann Krebs, Evgeny Epelbaum

TL;DR
This paper introduces a path integral approach to derive nuclear interactions from chiral Lagrangians, avoiding issues with traditional regularization methods and enabling consistent, symmetry-preserving calculations of nuclear forces.
Contribution
It proposes a novel path integral method with nonlocal field redefinitions to derive nuclear potentials without relying on canonical quantization, ensuring symmetry preservation.
Findings
Demonstrates the method on a Yukawa-type pion-nucleon model.
Shows the approach can systematically generate regularized nuclear forces.
Facilitates consistent derivation of nuclear currents from chiral Lagrangians.
Abstract
Low-energy nuclear interactions have been extensively studied in the framework of chiral effective field theory. The corresponding potentials have been worked out using dimensional regularization to evaluate ultraviolet divergent loop integrals. An additional cutoff is then introduced in the nuclear Schr\"odinger equation to calculate observables. Recently, we have shown that such a mixture of two regularization schemes violates chiral symmetry when applied beyond the two-nucleon system and/or to processes involving external probes. To solve this issue, three- and four-nucleon forces as well as exchange current operators need to be re-derived using symmetry-preserving cutoff regularization. While it is possible to introduce a symmetry-preserving cutoff already in the effective chiral Lagrangian, the appearance of high-order time derivatives of the pion field, caused by the regulator,…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Nuclear physics research studies · Neutrino Physics Research
