PaperPanorama

Nuclear Theory·nucl-th

Thursday·July 16, 2026

9 papers6 primary·3 cross-listed

  1. 01

    Neural-Accelerated Bayesian Calibration of Chiral Mean-Field Models to Nuclear Saturation and Vacuum Properties

    Isaac Legred🇺🇸 · Mateus Reinke Pelicer🇺🇸 · Veronica Dexheimer🇺🇸 · Jacquelyn Noronha-Hostler🇺🇸 · Nicolás Yunes🇺🇸

    Chiral models of nuclear interactions provide approximate, phenomenological descriptions of dense matter that respect the symmetries of quantum chromodynamics. Their Lagrangian parameters, however, are difficult to calibrate because these models are not controlled effective theories. Furthermore, repeated model evaluations are computationally expensive, and most parameter choices fail to reproduce acceptable saturation properties or hadron masses in vacuum. To address this, we develop a Bayesian inference framework to identify parameter regions consistent with nuclear saturation properties and vacuum experimental constraints. We implement this framework through a neural-network surrogate approximation that accelerates the repeated mapping from model parameters to nuclear and particle observables. Our fully-modular, neural-accelerated Bayesian framework interfaces the open-source MUSES Calculation Engine, the Bilby inference library, and the PyTorch machine-learning toolkit. We then apply the framework to the chiral mean-field model with a new generalized quartic vector self-interaction sector. We find that viable solutions are rare but broadly distributed within certain regions of parameter space, with the data constraining combinations of couplings more strongly than individual Lagrangian parameters. The resulting degeneracies imply that distinct saturation-compatible models can lead to qualitatively different descriptions of dense nuclear matter and, thus, of neutron stars, highlighting the need to combine terrestrial and astrophysical information.

    nucl-thastro-ph.HEgr-qc0 citations
  2. 02

    Further exploration of the machine-learning-based nuclear mass table

    Liu Yaqi · Li Zhilong · Wang Yongjia · Li Qingfeng Ma Chunwang

    The mass of the atomic nucleus, as one of the fundamental physical quantities of the atomic nucleus, plays an important role in understanding and researching the structure of the atomic nucleus and nuclear reactions, and the basic interactions between nucleons. However, accurately predicting the mass of nuclei far from the {\beta} stability line remains a huge challenge. Based on the machine-learning-refined mass model, we investigate the newly measured atomic nucleus masses since 2022, along with the residual proton-neutron interaction ({\delta}Vpn) and the {\alpha}-decay energy of heavy nucleus. It is found that: 1) For the 23 newly measured atomic nuclei, the root mean square deviations obtained by the machine-learning-refined mass models are between 0.51 and 0.58 MeV, which are significantly lower than 3.275, 1.058, 0.752, and 0.785 MeV given by the liquid droplet model (LDM), Weizsäcker-Skyrme-4 (WS4), finite-range droplet model (FRDM), and Duflo-Zucker (DZ), respectively. 2) The {\delta}Vpn of the atomic nucleus with N = Z obtained from machine-learning-refined mass models is consistent with the latest experimental data. 3) The root mean square deviations of the {\alpha}-decay energy of heavy nuclei obtained from the machine-learning-refined mass models have also been significantly reduced. Furthermore, by employing the Bayesian model average approach to combine the results from different machine-learning-refined mass models, we obtain more accurate predictions. These findings demonstrate that such models have good extrapolation capabilities and provide useful insight for further research. The datasets presented in this paper are openly available at https://doi.org/10.57760/sciencedb.j00213.00246.

    nucl-th0 citations
  3. 03

    Lorentz-Covariant Spectral Bounds from Thermal Quantum Field Theory: Retarded Green's Functions, Kubo Relations, and Holographic Constraints

    Alisher Sanetullaev🇺🇿 · Sarbinaz Bazarbaeva🇺🇿 · Marhabo Beymamatova🇺🇿 · Shokir Tursunov (New Uzbekistan University)🇺🇿

    We extend the recently established framework of Lorentz-covariant relaxation bounds from linearized classical kinetic and rheological theories to the full quantum setting of thermal quantum field theory (QFT). Working directly with retarded two-point functions at finite temperature and density, we show that the analyticity and positivity properties of spectral functions -- combined with Lorentz covariance and the Kubo--Martin--Schwinger (KMS) condition -- impose rigorous frame-dependent constraints on the location of singularities in the complex frequency plane. Specifically, we prove that the non-hydrodynamic quasinormal spectrum in any boosted frame is confined to a strip whose width is determined solely by the rest-frame spectral weight at zero spatial momentum and the maximal group velocity of the theory. We derive covariant sum rules for the spectral density under Lorentz boosts and establish that the convergence radius of the hydrodynamic gradient expansion transforms in a manner dictated by the same rest-frame data. In holographic theories dual to Einstein gravity in asymptotically anti-de Sitter spacetime, we verify the bounds by an explicit quasinormal-mode computation: the leading boosted pole moves deeper into the complex plane -- the observed relaxation rate increases with boost velocity, in sharp contrast to naive time dilation -- while respecting the bound throughout; we further derive corrections from higher-derivative gravitational terms. Our results provide a first-principles, non-perturbative derivation of Lorentz-covariant spectral constraints applicable to the quark-gluon plasma, superfluid phases of neutron star matter, and strongly correlated electrons near quantum critical points.

    nucl-thhep-th1 citation
  4. 04

    NNStar: An end-to-end AI agent for nuclear matter and neutron star physics

    Yao Ma🇨🇳 · Yong-Liang Ma🇨🇳 · Jia-Ying Xiong🇨🇳

    Constraining the equation of state of dense matter requires confronting effective models with massive data that spans many orders of magnitude in scale, from sub-saturation nuclear matter properties to the masses, radii, and tidal deformabilities of neutron stars. Exploring the high-dimensional coupling space of such a model and fine tuning it against all of these constraints is a labor- and time-intensive task. We present \textsc{NNStar}, an end-to-end artificial-intelligence agent that automates this workflow. Rather than a bespoke application, \textsc{NNStar} is delivered as a portable \emph{skill} for an open large-language-model (LLM) agent platform -- a self-describing module that pairs worked usage conventions with symbolic and numerical physics engines that (i) build a relativistic mean-field model directly from a Lagrangian, (ii) solve the mean-field equations of motion and evaluate the saturation properties, (iii) construct the -equilibrium equation of state, splice it to a crust, and integrate the Tolman--Oppenheimer--Volkoff equations, and (iv) score the resulting predictions through a Bayesian joint analysis against nuclear matter and astrophysical observations. The agent can read a model, fit its parameters, and report the full set of nuclear matter and neutron star observables without human intervention. \textsc{NNStar} therefore provides a new, AI-driven framework for analyzing nuclear matter and neutron-star observations.

    nucl-thastro-ph.HEphysics.comp-ph1 citation
  5. 05

    Beyond Constant Error: Heteroscedastic Bayesian Model Combination for Modeling Unmeasured Nuclei

    B. Knight · S. Lalit · P. Giuliani · K. Godbey · W. Nazarewicz · A. Ravlić · P. -G. Reinhard

    Experimentally inaccessible regions of the nuclear chart remain a challenge for global models of atomic nuclei to predict. This includes exotic nuclei near particle drip lines, superheavy elements at the extremes of mass and charge, and the neutron-rich pathways of astrophysical processes in explosive stellar environments where heavy elements are created. Given that individual nuclear models are imperfect, deep extrapolations are best approached using model ensembles, which allow for the systematic combination of diverse theoretical predictions. In this study, we employ the recently introduced Bayesian Model Combination (BMC) method, based on statistical machine learning, that provides robust uncertainty quantification for forecasts using model ensembles. To account for the inherent degradation of predictive power as models extrapolate into the yet-unexplored domain, we introduce a heteroscedastic BMC framework in which the combined theoretical uncertainty is treated as a dynamic quantity. We apply this methodology to an ensemble of realistic energy density functionals with a specific focus on the isotopic chains. We rigorously validate the approach using both experimental data and synthetic data designed to assess performance in the deep extrapolation regime. Our results demonstrate that the proposed heteroscedastic approach yields superior calibration metrics and provides statistically principled assessments of the particle drip lines.

    nucl-thphysics.data-an0 citations
  6. 06

    Towards compressed baryonic matter densities: D meson diffusion

    Dani Rose J Marattukalam · Manpreet Kaur · Arvind Kumar · Sabyasachi Ghosh

    We study the spatial diffusion coefficient and the momentum transport coefficients of D mesons through a dense nuclear medium in the relaxation time approximation of the kinetic theory. The in medium modifications of the D meson transport properties are computed in the chiral SU(3) hadronic model. Relaxation time is estimated using dilute and degenerate gas approximations for low and high baryonic densities, respectively. We have noticed that relaxation time and spatial diffusion of D meson decrease rapidly in the low density dilute gas domain and mildly in the high density degenerate gas domain. The detailed result of the present work on D meson diffusion is quite contemporary and important towards the compressed baryonic matter densities which can be assessed in future heavy ion collision experiments.

    nucl-thhep-ph0 citations
  7. 07

    Weak charged current induced electron and positron scattering off proton at JLab and MAMI energies

    A. Fatima🇮🇳 · M. Sajjad Athar🇮🇳 · S. K. Singh🇮🇳

    The development of next-generation, high-luminosity, and high-precision charged lepton beam facilities at JLab and MAMI has opened, in recent years, a new frontier in the exploration of weak interaction processes induced by electrons and positrons in the neutral current sector, which can also be used to study weak interaction processes induced by charged currents. In particular, these processes in the intermediate energy regime, spanning from a few hundred MeV to a few GeV, play a crucial role in understanding electroweak dynamics, nucleon structure, and hadronic response functions. This review presents a comprehensive theoretical study of weak charged-current interactions of electrons and positrons with free protons, encompassing quasielastic scattering in both the strangeness conserving and strangeness changing channels, together with inelastic production of the (1232), (1440), (1535) resonances, and mesons, and associated production of strange particles. We analyse differential and total cross sections, polarization observables of the final baryons, and spin asymmetries of the proton target, demonstrating their sensitivity to the underlying weak interaction dynamics and to possible second class currents, thereby enabling stringent tests of G- and T- invariance. The explored kinematic region also offers a unique and independent opportunity to constrain the axial vector sector of the weak interaction, and it provides a discussion of alternative ways to determine the axial dipole mass in the quasielastic scattering region, a fundamental parameter that is in debate for nearly two decades. It also focuses on the study of the axial-vector form factors associated with the excitation of the resonance in a manner that is free from the uncertainties inherent in their determination from studies of (anti)neutrino-induced weak processes.

    hep-phhep-exnucl-exnucl-th0 citations
  8. 08

    Nuclear Charge Radius of Be from Muonic Atom Spectroscopy Using a Microcalorimeter

    Ofir Eizenberg🇮🇱 · Shikha Rathi🇮🇱 · Andreas Abeln🇩🇪 · Sonia Bacca🇩🇪 · Gonçalo Baptista🇫🇷 · Nir Barnea🇮🇱 · Noam Burger🇮🇱 · Thomas Elias Cocolios🇧🇪 · Marie Deseyn🇧🇪 · Tim Egert🇩🇪 · Christian Enss🇩🇪 · Andreas Fleischmann🇩🇪 and 25 other authors

    The transition energy in muonic Be was measured using a metallic magnetic calorimeter, resulting in eV. The result is 30 times more precise than the previous best measurement and enables the extraction of the corresponding nuclear charge radius Befm. It is times more precise than the commonly used value based on electron scattering and differs from it by times the combined uncertainties. This measurement represents the first determination of a nuclear charge radius using muonic x-ray spectroscopy with microcalorimeters.

    nucl-exnucl-thphysics.atom-ph2 citations
  9. 09

    Evidence for sequential (nS) suppression in light ion collisions

    CMS Collaboration

    Bound states of heavy quark-antiquark pairs, known as quarkonia, have long been regarded as particularly sensitive probes of the quark-gluon plasma (QGP). Comparing quarkonium yields in collisions of heavy nuclei, such as gold or lead, with a proton-proton (pp) reference reveals a characteristic pattern of sequential suppression, in which weakly-bound excited states are more strongly suppressed than the ground states. We report the first measurements of the three lowest mass -wave vector bottomonium resonances, the ground state (1S) and the excited states (2S) and (3S), in oxygen-oxygen collisions at a center-of-mass energy per nucleon pair of = 5.36 TeV. Measurements of the yields of the (1S) and (2S) resonances in neon-neon collisions, at the same , are also presented. The (2S)/(1S) ratio is found to be significantly below the measured pp reference value, and the (3S)/(1S) ratio shows an even larger reduction. The significance of the relative (3S) to (2S) suppression exceeds three standard deviations. These results provide evidence for the sequential suppression of (nS) states in light ion collisions, similar to observations made in lead-lead and gold-gold collisions, generally attributed to the presence of a QGP medium.

    nucl-exhep-exnucl-th2 citations

Affiliations

first authorsco-authorsvia INSPIRE