Improved Actions for Nuclear Effective Field Theories

Fuente: arXiv
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Main Author: van Kolck, U.
Format: Preprint
Published: 2025
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author van Kolck, U.
author_facet van Kolck, U.
contents Effective field theories have been successful in describing nuclei up to the alpha particle but face significant challenges for larger nuclei due to leading-order instabilities. These issues can be addressed with the introduction of a fake interaction range at leading order, whose effects are compensated for in perturbation theory at higher orders. The calculation of two-body phase shifts and ground-state energies for up to five $^4$He atoms in a theory with only contact interactions shows that, as long as it remains smaller or comparable to the experimental effective range, the fake range does not alter the convergence of the EFT expansion but is often beneficial at the lowest orders. I discuss the implications of this improved-action approach to the ground-state energies of nuclei such as $^6$Li, $^{12}$C, and $^{16}$O.
format Preprint
id arxiv_https___arxiv_org_abs_2512_00562
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Improved Actions for Nuclear Effective Field Theories
van Kolck, U.
Nuclear Theory
Effective field theories have been successful in describing nuclei up to the alpha particle but face significant challenges for larger nuclei due to leading-order instabilities. These issues can be addressed with the introduction of a fake interaction range at leading order, whose effects are compensated for in perturbation theory at higher orders. The calculation of two-body phase shifts and ground-state energies for up to five $^4$He atoms in a theory with only contact interactions shows that, as long as it remains smaller or comparable to the experimental effective range, the fake range does not alter the convergence of the EFT expansion but is often beneficial at the lowest orders. I discuss the implications of this improved-action approach to the ground-state energies of nuclei such as $^6$Li, $^{12}$C, and $^{16}$O.
title Improved Actions for Nuclear Effective Field Theories
topic Nuclear Theory
url https://arxiv.org/abs/2512.00562