PaperPanorama

Nuclear Theory·nucl-th

Friday·February 6, 2026

7 papers4 primary·3 cross-listed

  1. 01

    Neglecting correlations leads to misestimated model errors in EFT predictions

    Nathan L. Carter · Richard J. Furnstahl · Jordan A. Melendez · Daniel R. Phillips

    Bayesian analyses of the convergence pattern of Effective Field Theories (EFTs) enable estimation of the uncertainty induced by a truncated expansion. When an EFT that has been calibrated to data is used to make a prediction this truncation uncertainty enters the posterior predictive distribution twice: directly from the finite-order calculation of the predicted quantity and indirectly through the posterior probability distributions of the EFT low-energy constants (LECs) determined by the calibration. In this work, we focus on the interplay of these two sources of uncertainty. We do this in the context of a toy EFT that we fit to pseudodata and use to make predictions. Direct EFT truncation uncertainty and LEC uncertainty are correlated in predictions when the predicted quantity is correlated with the observables used to fit the LECs. Here this results in the overall theoretical uncertainty in the EFT prediction being smaller than either the uncertainty induced by the truncation error or that stemming from the LECs alone.

    nucl-thhep-phnucl-ex1 citation
  2. 02

    Decay of three-body resonances in a discrete basis

    J. Casal · J. Gómez-Camacho

    We present a theoretical framework for calculating the asymptotic properties and decay dynamics of three-body resonances described in a discrete basis. The method involves solving an inhomogeneous Schrödinger equation to determine the non-normalizable resonant state by identifying a normalizable source state, which captures the short-range internal structure. The long-range behavior is then calculated using the free three-body propagator, providing accurate asymptotic coefficients necessary for describing decay correlations. We apply this formalism to the two-neutron decay of the 0 ground-state and the 2 excited-state resonances of (), working within the hyperspherical expansion method with an analytical transformed harmonic oscillator basis. Our results show that the decay is strongly dominated by the lowest hypermomentum components at large separations, reflecting effective three-body barrier penetration dynamics that shape the final state. The calculated relative-energy distributions exhibit clear neutron-neutron correlations for both states, arising from mixing between different asymptotic channels, and are consistent with a direct two-neutron emission mechanism, in agreement with recent experimental observations. This work provides a reliable tool for linking the internal structure of three-body resonances to their decay properties.

    nucl-thPRC(2026)·0 citations
  3. 03

    Three-body Effect in Short-range Correlations

    H. Y. Shang · R. Z. Hu · X. Y. Xu · Z. C. Xu · J. C. Pei · S. M. Wang

    Short-range correlations (SRCs) provide the link between low- and high-energy nuclear physics and can be quantified by two-nucleon densities. We present calculations of the two-nucleon densities using free-space similarity renormalization group (SRG)-evolved operators and in-medium SRG (IMSRG) ground states with softend chiral interaction. Our calculations benchmark well against no-core shell model (NCSM) results with unevolved oparetors and Hamiltonians in . We explicitly include the induced three-body (3b) density operators for the first time which, together with the 3b Hamiltonians, provide the full 3b effects. We show pronounced 3b effects in the two-nucleon densities. Combined with valence-space IMSRG (VS-IMSRG) method, we extend the calculation to the oxygen isotopic chain. This approach enables a consistent \textit{ab initio} description of low-energy properties and SRCs within one framework and offers predictions for the upcoming SRC measurements in unstable nuclei.

    nucl-thPRC(2026)·1 citation
  4. 04

    Mesoscopic chemical potentials across the (hyper)nuclear landscape

    Jacquelyn Noronha-Hostler🇺🇸

    Finite nuclei constrain the dense-matter equation of state (EOS), yet they are self-bound quantum droplets far from the thermodynamic limit. Motivated by an analogy to quantum dots, we show that the nuclear chart nevertheless defines a mesoscopic regime in which mesoscopic chemical-potential analogs can be extracted directly from nuclear and hypernuclear binding energies after consistent Coulomb subtraction. These are discrete finite-difference response functions -- local slopes of the strong-interaction energy landscape -- not equilibrium grand-canonical chemical potentials. The nuclear chart itself supplies an "ensemble of nearby droplets": finite differences across neighboring nuclei suppress shell- and pairing-scale oscillations while retaining the smooth bulk trend, producing robust slopes without a macroscopic limit. Thus, the data provide empirical local derivatives that any strangeness-enabled EOS must reproduce near saturation. Mapping the measured (hyper)nuclear landscape at , we find smooth, numerically stable responses, including a large, negative strangeness chemical-potential analog, and we identify specific hypernuclear measurements that can directly test and sharpen these EOS constraints.

    nucl-thastro-ph.HEnucl-ex2 citations
  5. 05

    Towards D quantum electrodynamics on a cold-atom quantum simulator

    Peter Majcen · Jesse J. Osborne🇩🇪 · Philipp Hauke · Bing Yang🇨🇳 · Simone Montangero🇮🇹 · Jad C. Halimeh🇩🇪

    Cold atoms have become a powerful platform for quantum-simulating lattice gauge theories in higher spatial dimensions. However, such realizations have been restricted to the lowest possible truncations of the gauge field, which limit the connections one can make to lattice quantum electrodynamics. Here, we propose a feasible cold-atom quantum simulator of a -dimensional U lattice gauge theory in a spin truncation, featuring dynamical matter and gauge fields. We derive a mapping of this theory onto a bosonic computational basis, stabilized by an emergent gauge-protection mechanism through quantum Zeno dynamics. The implementation is based on a single-species Bose--Hubbard model realized in a tilted optical superlattice. This approach requires only moderate experimental resources already available in current ultracold-atom platforms. Using infinite matrix product state simulations, we benchmark real-time dynamics under global quenches. The results demonstrate faithful evolution of the target gauge theory and robust preservation of the gauge constraints. Our work significantly advances the experimental prospects for simulating higher-dimensional lattice gauge theories using larger gauge-field truncations.

    cond-mat.quant-gashep-latnucl-thquant-ph4 citations
  6. 06

    Transport of meson in hadronic matter in the domain of Non-Extensive statistics

    Aditya Kumar Singh🇮🇳 · Swatantra Kumar Tiwari🇮🇳

    In this work, we investigate the drag and diffusion coefficients of meson propagating through a hadronic thermal bath by employing the Fokker Planck equation within the framework of Tsallis non extensive statistics. The non extensive parameter, accounts for the deviation from equilibrium and provides a more realistic description of the medium that is not perfectly thermalized. The hadronic bath, consisting of various mesonic and baryonic species, is characterized by different mass cutoffs that control the spectral composition of the medium. Our analysis shows that both the drag, and momentum diffusion coefficients, increases with temperature and also increases with increasing and mass cutoff. The spatial diffusion coefficient, exhibits a decreasing trend with temperature , and mass cutoff which highlights the significant influence of non-equilibrium effects and hadronic composition on the transport behaviour of meson, offering valuable insights into the thermal and dynamical properties of the hadronic phase in heavy ion collisions. In this study while calculating the spatial diffusion coefficient, we observe that beyond = 1.24, goes below to the lower limit proposed in Ads/CFT theory. This suggests that 1.24 is the upper limit of non extensive parameter, .

    hep-phhep-exnucl-th1 citation
  7. 07

    Violation of the Conformal Limit at Finite Density: Insights from Effective Models and Lattice QCD

    Francisco X. Azeredo🇧🇷 · Arthur E. B. Pasqualotto🇧🇷 · Bruno S. Lopes🇧🇷 · Dyana C. Duarte🇧🇷 · Ricardo L. S. Farias🇧🇷

    In this work, we discuss recent results obtained with the application of the medium separation scheme (MSS) in different contexts where a clear violation of the conformal limit for the speed of sound at finite density has been observed in Quantum Chromodynamics (QCD). We analyze several scenarios, including QCD at finite isospin density, two-color QCD, and two-flavor color superconductivity. Whenever possible, we compare our findings with lattice QCD (LQCD) results, showing that the Nambu--Jona-Lasinio (NJL) model combined with the MSS provides a consistent description across different regimes of the QCD phase diagram. Our analysis highlights how effective models, when properly regularized, can capture essential nonperturbative features of dense QCD matter, offering complementary insights to lattice simulations.

    hep-phhep-lathep-thnucl-thSymmetry(2026)·7 citations

Affiliations

first authorsco-authorsvia INSPIRE