PaperPanorama

Nuclear Theory·nucl-th

Tuesday·August 5, 2025

13 papers7 primary·6 cross-listed

  1. 01

    [Submitted on 1 Aug 2025]

    Criticality analysis of nuclear binding energy neural networks

    S.A. Sundberg · R.J. Furnstahl

    Machine learning methods, in particular deep learning methods such as artificial neural networks (ANNs) with many layers, have become widespread and useful tools in nuclear physics. However, these ANNs are typically treated as ``black boxes'', with their architecture (width, depth, and weight/bias initialization) and the training algorithm and parameters chosen empirically by optimizing learning based on limited exploration. We test a non-empirical approach to understanding and optimizing nuclear physics ANNs by adapting a criticality analysis based on renormalization group flows in terms of the hyperparameters for weight/bias initialization, training rates, and the ratio of depth to width. This treatment utilizes the statistical properties of neural network initialization to find a generating functional for network outputs at any layer, allowing for a path integral formulation of the ANN outputs as a Euclidean statistical field theory. We use a prototypical example to test the applicability of this approach: a simple ANN for nuclear binding energies. We find that with training using a stochastic gradient descent optimizer, the predicted criticality behavior is realized, and optimal performance is found with critical tuning. However, the use of an adaptive learning algorithm leads to somewhat superior results without concern for tuning and thus obscures the analysis. Nevertheless, the criticality analysis offers a way to look within the black box of ANNs, which is a first step towards potential improvements in network performance beyond using adaptive optimizers.

    Comments:
    23 pages, 14 figures
    Subjects:
    Nuclear Theory (nucl-th); High Energy Physics — Phenomenology (hep-ph)
    arXiv:
    2508.01001 [pdf]
    J.Phys.G(2025)·2 citations
  2. 02

    [Submitted on 2 Aug 2025]

    Exactness of the normal-ordered two-body truncation of three-nucleon forces

    Maxwell Rothman · Ben Johnson-Toth · Francesca Bonaiti · Gaute Hagen · Matthias Heinz · Thomas Papenbrock

    Reference-state-based many-body methods start from Hamiltonians that are normal ordered with respect to the reference state. In low-energy nuclear physics applications normal-ordered Hamiltonians consisting of two- and three-nucleon forces are usually truncated at the two-body rank with residual three-nucleon operators being discarded. Benchmark computations have shown that this truncation is accurate, but we lack an understanding about why it works. We show that the normal-ordered two-body truncation is exact for zero-range three-body forces when nuclei are computed using the coupled cluster with singles and doubles method. As the nuclear three-nucleon force is short ranged and a three-body contact is a leading term in effective field theories of quantum chromodynamics, our result provides an analytical basis for the popular normal-ordered two-body approximation.

    Comments:
    6 pages, 2 figures, 1 table
    Subjects:
    Nuclear Theory (nucl-th)
    arXiv:
    2508.01507 [pdf]
    PRC(2025)·9 citations
  3. 03

    [Submitted on 4 Aug 2025]

    nuclear contact coefficients in the generalized contact formalism

    E. Proietti · L.E. Marcucci · M. Viviani

    We present a theoretical calculation for the and 4 nuclear contact coefficients within the generalized contact formalism, using both local and non-local chiral potentials. The Hyperspherical Harmonics method is employed to calculate the nuclear wave functions, from which we derive two-body momentum distributions and density functions to extract the contact coefficients. We have extracted the contact coefficients from two-body momentum distributions or from density functions, for a given nucleus and potential, and we have found that the generalized contact formalism predictions are verified in the triplet spin channel for local and non-local potentials. On the other hand, some significant tensions exist for the singlet channels, especially when studied with non-local potentials. We have also analyzed the model-independence of the ratios between the contact coefficients, and we have found to be quite satisfied. This study extends previous works based on local interaction models only.

    Comments:
    29 pages, 25 figures and 4 tables. New version accepted for publication
    Subjects:
    Nuclear Theory (nucl-th)
    arXiv:
    2508.02200 [pdf]
    PRC(2026)·0 citations
  4. 04

    [Submitted on 4 Aug 2025]

    Tribute to Toshimitsu Yamazaki (1934-2025): Quest for Exotic Hadronic Matter

    Avraham Gal🇮🇱

    In this talk I pay tribute to Toshimitsu Yamazaki who died earlier this year. Yamazaki's leading contributions to Hadronic Physics, in particular to Strangeness Nuclear Physics in Japan and elsewhere, are well known. Two of the five Recurring Themes of his research, as listed in the Japan Academy site, are highlighted here: (i) Discovery of deeply bound pionic-atom states, and (ii) Search for kaonic nuclei -- Kaonic Proton Matter (KPM). I conclude by reviewing briefly my own recent work, confirming Farrar's conjecture that a deeply bound dibaryon is not ruled out by the weak-decay observation of hypernuclei. However, the relatively long lifetime of such a deeply bound is much too short to qualify it for a Dark-Matter candidate.

    Comments:
    Presented at the 21st Int'l Conf. Hadron Spectroscopy and Structure (HADRON 2025) March 27-31, 2025, Toyonaka Campus, Osaka University, Japan. To be published as PoS(HADRON2025)263
    Subjects:
    Nuclear Theory (nucl-th); High Energy Physics — Phenomenology (hep-ph); Nuclear Experiment (nucl-ex)
    arXiv:
    2508.02267 [pdf]
    PoS(2026)·0 citations
  5. 05

    [Submitted on 4 Aug 2025]

    Coulomb-Corrected Wormhole Model for Neon-20

    Ruoxin Bai🇬🇧 · N.S. Manton🇬🇧

    Building on the spatial wormhole geometry proposed by Manton and Dunajski, we develop a modified model for the Neon-20 nucleus that incorporates a repulsive Coulomb potential. This reduces the large threshold energy for cluster break-up in the original model and converts most bound states to resonances. We use generalized WKB methods to calculate the energies of bound states, and also the energies and widths of under-barrier and over-barrier resonances. The results align closely with experimental data for the 0_1^+ , 0_1^- and 0_4^+ rotational bands of Neon-20, including the large widths in the higher-nodal 0_4^+ band.

    Comments:
    25 pages, 9 figures
    Subjects:
    Nuclear Theory (nucl-th); High Energy Physics — Theory (hep-th)
    arXiv:
    2508.02428 [pdf]
    NPA(2026)·1 citation
  6. 06

    [Submitted on 4 Aug 2025]

    Density functional theory of renormalization group in nuclear matter

    Yong-rui Chen🇨🇳 · Wei-jie Fu🇨🇳 · Yang-yang Tan🇨🇳

    The density functional renormalization group (density-fRG) is proposed to investigate the density fluctuations within the functional renormalization group approach, which allows us to quantify the medium effect and study physics of high densities. This method is applied to the nucleon-meson effective field theory, also known as the Walecka model, to study the properties of nuclear matter at high baryon densities. It is found that both the attractive and repulsive nucleon meson interactions are screened by the high density medium, which results in a stiffer equation of state (EoS) of nuclear matter in the regime of , then a softer EoS when . Here denotes the saturation baryon density of symmetric nuclear matter. Furthermore, a new phenomenon called the locking of Fermi surface is found. In the locking of Fermi surface the effective energy of quasi-nucleon is always close to the Fermi surface, which are both running with the renormalization group scale.

    Comments:
    18 pages, 13 figures, 1 table
    Subjects:
    Nuclear Theory (nucl-th); High Energy Physics — Phenomenology (hep-ph)
    arXiv:
    2508.02575 [pdf]
    PRC(2026)·2 citations
  7. 07

    [Submitted on 4 Aug 2025]

    Bound states of Be within cluster models based on state-of-the-art HAL QCD charmonium-nucleon interactions

    Faisal Etminan🇮🇷

    The possible bound state of the Be, a charmonium-nucleus system, is investigated. The analysis is carried out within a three-cluster model, where its binary subsystems are represented as and . The hyperspherical harmonics method is employed to facilitate a convenient description of this three-cluster configuration. The calculations are done by employing the effective potentials. These potentials were derived recently based on state-of-the-art lattice QCD calculations, which provided interactions for the spin 3/2 , spin 1/2 , spin 1/2 and spin-averaged interactions, all obtained with nearly physical pion masses. The Coulomb interaction was also incorporated into the current calculations. It is determined that, despite neither the He nor the Be binary subsystems being bound, a bound state of the nuclear system could potentially exist. The maximum central binding energy is found to be approximately 1.71 MeV, based on the spin 1/2 interaction, while a minimum value of about 0.56 MeV is obtained from calculations involving the spin 1/2 interaction.

    Comments:
    14 pages, 1 figure , 1 table
    Subjects:
    Nuclear Theory (nucl-th)
    arXiv:
    2508.02653 [pdf]
    PRC(2025)·4 citations

Affiliations

first authorsco-authorsvia INSPIRE