PaperPanorama

Nuclear Theory·nucl-th

Monday·December 1, 2025

19 papers7 primary·12 cross-listed

  1. 01

    Symmetry energy in dilute matter and the neutron skin

    Panagiota Papakonstantinou

    Energy density functional (EDF) theory provides a unified framework for the description of nuclei and of infinite nuclear matter. In principle, it facilitates direct connections between nuclear data and the nuclear equation of state (EoS). Although in practice traditional nuclear EDF theory has strained to describe finite nuclei and infinite systems at the same time, recently developed extended EDF models overcome many of the limitations of traditional models in that respect. A recent challenge to EDF and EoS studies has come entirely from within nuclear structure, namely how to account both for the relatively thin neutron skin in 48Ca as extracted by the CREX experiment and the relatively thick neutron skin of 208Pb exctracted by the PREX-II experiment. The discrepancy suggests a surface and structure effect. The present study shows that the puzzle can be resolved in a non-relativistic framework by revisiting the nuclear surface tension and diffuseness, as driven in part by the EoS in dilute matter well below the saturation point and in part by the isovector gradient terms and spin-orbit potential. Such effects have no bearing on the EoS near and above saturation.

    nucl-thEPJ Web Conf.(2026)·1 citation
  2. 02

    Study of and states in even-even No isotopes

    M.A. Mardyban · V.O. Nesterenko

    Low-lying and isomeric states in even-even isotopes No are explored within the Quasiparticle Random-Phase Approximation (QRPA) method with Skyrme parametrization SLy4. The deformations, single-particle (s-p) spectra and pairing in the isotopes are inspected. The calculations predict a pronounced minimum in the neutron pairing at =252, 254, which significantly affects the properties of and states and leads to a correlation of their spectra. It is shown that isomers are basically low-energy two-quasiparticle (2qp) states. The appearance or absence of these isomers in No is explained as a combined effect of the s-p spectra and pairing. The collective states are predicted in all the isotopes as the lowest multipole non-rotational excitations. These states are interpreted as a superposition of pairing vibrations and -vibrations. The results are in a reasonable agreement with available experimental data for No.

    nucl-thEPJ Web Conf.(2026)·0 citations
  3. 03

    Relations between three-particle interactions in nuclear matter to observable quantities

    Wolfgang Bentz · Ian C. Cloët

    In the first part of this paper, we use the framework of the Fermi liquid theory to derive model-independent relations between the slope parameters of the symmetry energy and of the incompressibility in nuclear matter to three-particle interaction parameters. Based on these relations, we present simple estimates and compare with the empirical information. In the second part, we discuss the general structure of the three-particle scattering amplitude in nuclear matter, and use methods similar to the Bethe-Brueckner-Goldstone theory to show how three-particle cluster diagrams emerge naturally in the Fermi liquid theory.

    nucl-thnucl-ex0 citations
  4. 04

    NuclearConfectionery: Multi-stage Simulation Framework for Modeling Relativistic Heavy-ion Collisions

    Kevin P. Pala · Surkhab Kaur Virk · Dekrayat Almaalol · Isabella Danhoni · Nanxi Yao · Isaac Long · Willian Serenone · Jordi Salinas San Martín · Alayna A. Yared · Christopher Plumberg · Fernando Gardim · Jacquelyn Noronha-Hostler

    We present the NuclearConfectionery, a modular framework for simulating the full dynamical evolution of relativistic heavy-ion collisions. Its core hydrodynamic module, CCAKE 2.0, represents a major advance over previous SPH-based relativistic hydrodynamic codes. CCAKE 2.0 simultaneously evolves energy-momentum and multiple conserved charges (B, S, Q) with a four-dimensional equation of state, and can be run in either Cartesian or hyperbolic coordinates, enabling consistent simulations from the RHIC Beam Energy Scan to LHC energies. We have implemented a particlization module that supports global BSQ charge conservation on the freeze-out surface; the resulting hadron ensemble is then propagated through a hadronic transport afterburner. A source term is included in the equations of motion to couple jets to the fluid, allowing simultaneous bulk and hard-probe evolution or, alternatively, for stopped baryons at low beam energies. The framework offers flexible choices of equations of motion (Israel-Stewart, DNMR, ADNH) and transport coefficients, along with GPU-ready performance via Kokkos/Cabana, offline equation of state inversion for 4D tables, and containerized portability. We validate the code with semi-analytical benchmarks (including BSQ Gubser and Landau-Khalatnikov solutions) and extensive convergence studies. The NuclearConfectionery provides a user-friendly, high-performance, open-source tool for event-by-event simulations across collision energies, offering flexibility to study QCD matter at both vanishing and finite densities.

    nucl-thhep-phnucl-ex2 citations
  5. 05

    Constraining of Nuclear Matter Equations of State With Rotating Neutron Stars

    Hyukjin Kwon · Kazuyuki Sekizawa

    Neutron stars can be regarded as natural laboratories that enable us to investigate nuclear matter properties under extreme conditions that are otherwise impossible to access in terrestrial experiments. Astrophysical observations of neutron stars provide invaluable information on existing nuclear interaction models and equations of state (EoSs) at various densities. Most studies of neutron star structure employ the Tolman-Oppenheimer-Volkoff (TOV) equation which describes spherically symmetric, non-rotating stars in hydrostatic equilibrium. However, since neutron stars rotate fast, they could experience significant centrifugal deformation, and axially-symmetric calculations are required for accurate description of internal structure. The Komatsu-Eriguchi-Hachisu (KEH) method is well known for modeling rapidly-rotating compact objects in a fully general relativistic manner. In this contribution, we report results of KEH calculations for rapidly-rotating neutron stars using EoSs based on Gogny-type finite-range effective nucleon-nucleon interactions. Our results show that the mass-radius relation systematically changes with increasing angular velocity, highlighting the importance of including rotational effects when confronting theoretical EoSs with observational data.

    nucl-thastro-ph.HEgr-qcEPJ Web Conf.(2026)·0 citations
  6. 06

    Accuracy, asymptotes, and applications of the Born approximations to the calculation of the Mott scattering cross section, the primary atomic displacement cross section, and the energy-loss straggling

    A. Arkhutsik · P. Kats · O. Voskresenskaya

    The first, second and third Born approximations of the Mott scattering cross section are considered. The relative error of all three Born approximations averaged by angles and energies is calculated for the first 30 elements of the Mendeleev periodic table of elements and also of the second and third-Born approximation for the first hundred elements of the Mendeleev table. The accuracy of the second and third Born approximations for calculating the normalized Mott scattering cross section are compared on the wide range of nuclei of elments. The accuracy of the Born approximations for calculating the Mott correction in the Bethe-Bloch formula for for the second Born approximation and the third approximation is analyzed. An expression is obtained for the cross section of the primary displacement of the atom in the third Born approximation. For iron, silver and lead, the cross section of the primary displacement of the atom for a number of electron energies is calculated. For a number of examples, it is calculated starting from the electron energy. The difference of the cross section is obtained by the asymptotic formula from by the McKinley-Feshbach formula, it will be less than one percent. Accuracy of the Born approximations for calculating energy-loss straggling is analyzed.

    nucl-th0 citations
  7. 07

    Universal imprinting of short-range correlations in relativistic heavy-ion collisions

    Pei Li🇨🇳 · Kai-Jia Sun🇨🇳 · Bo Zhou🇨🇳 · Guo-Liang Ma🇨🇳

    Protons and neutrons within atomic nuclei undergo intense and fleeting encounters driven by the strong force at short distances. These interactions generate close-proximity pairs, a phenomenon known as short-range correlations (SRCs). While the properties of SRCs have been extensively studied in cold nuclear matter, their behavior under extremely hot and dense conditions remains largely unexplored. Here, we incorporate correlated nucleon configurations into relativistic heavy-ion collisions, using the quark-gluon plasma (QGP), a state of matter present microseconds after the Big Bang, as a sensitive diagnostic tool. We find that these correlations induce substantial modifications to event-by-event geometry, which are quantitatively identified through higher-order moments of the transverse profile. Most importantly, we find a surprising linear relation between QGP geometry fluctuations and the SRC scale factor spanning systems from deuteron to lead, which reflects the universal imprinting of SRCs in relativistic heavy-ion collisions. Our findings reveal the emergence of short-range structural effects across vastly different energy scales from low-energy electron scattering to high-energy nuclear collisions.

    nucl-thhep-phnucl-ex5 citations
  8. 08

    Wavelet analysis of monopole strength in highly deformed Mg

    A. Bahini🇿🇦 · V. O. Nesterenko🇷🇺 · P. von Neumann-Cosel🇩🇪 · P.-G. Reinhard🇩🇪 · J. Carter🇿🇦 · N. A. Ashurko🇷🇺 · R. Neveling🇿🇦 · A. Repko🇸🇰 · I. T. Usman🇿🇦

    Experimental data on -particle inelastic scattering for monopole excitations in Mg in the excitation-energy region MeV, obtained at the iThemba Laboratory for Accelerator Based Sciences (iThemba LABS), have been analyzed within a fully self-consistent quasiparticle random-phase approximation (QRPA) framework using two Skyrme parametrizations. A good overall agreement with the experimental data is achieved, particularly with the SkP force, which corresponds to a low nuclear incompressibility of MeV. Extraction of energy scales, by means of wavelet analysis, characterizing the observed fine structure of the isoscalar giant monopole resonance (ISGMR) as well as the low-energy region MeV of the deformation-induced monopole-quadrupole coupling (MQC) in order to investigate the damping mechanism contributing to their decay widths. Characteristic energy scales are extracted from the fine structure using continuous wavelet transforms. The experimental results are compared to QRPA calculations employing the Skyrme parameterizations SkP and SVbas. A significant, if not decisive, impact of the MQC strength on the wavelet power spectra is observed across the entire excitation-energy range of MeV. Wavelet features derived from the QRPA and from unperturbed two-quasiparticle (2qp) monopole strengths are compared. The results demonstrate that the residual interaction plays a key role in reproducing realistic wavelet powers and characteristic energy scales. Overall, a continuous range of scales keV is obtained rather than distinct isolated scales. The deformation softness of Mg is found to significantly influence both the monopole strength distribution and the wavelet characteristics.

    nucl-exnucl-thPRC(2026)·0 citations
  9. 09

    Energy-momentum tensor form factor D(t) of proton and neutron

    Andrea Mejia🇺🇸 · Peter Schweitzer🇺🇸

    The energy-momentum tensor (EMT) form factor is finite and negative in hadronic models and lattice QCD when only strong forces are included. However, when electromagnetic forces are considered, the of charged hadrons undergoes a dramatic change: at small , it changes sign and diverges like as shown for the proton in the classical model by Białynicki-Birula based on residual nuclear forces which can be understood as a mean field approach. We construct an analogous neutron model and show that this framework accurately explains the electromagnetic proton-neutron mass difference. We demonstrate that, after appropriately rescaling the residual nuclear forces, the model can reproduce lattice data on the nucleon up to GeV as well as QED effects. Based on this realistic model description, we show that the proton and neutron form factors are practically indistinguishable down to far below what can currently be accessed experimentally. We conclude that in the foreseeable future the form factors of proton and neutron will practically look the same in experiments and phenomenology.

    hep-phnucl-thPRD(2026)·4 citations
  10. 10

    QCD axions and domain walls in dense matter under compact stellar conditions

    Zhen-Yan Lu🇨🇳 · Shu-Peng Wang🇨🇳 · Qi Lu🇨🇳 · Bo-Nan Zhang🇨🇳 · Marco Ruggieri🇮🇹

    In compact stellar environments, the stability of dense QCD matter requires the simultaneous fulfillment of charge neutrality and beta equilibrium. In this work, we study how temperature and finite chemical potential affect QCD topology and axion properties within this medium, analyzing both cases with and without the charge neutrality condition. Our results show that the topological susceptibility and axion properties are highly sensitive to the critical behavior of the chiral phase transition in both cases. In particular, the axion mass is strongly suppressed near the transition, while the axion self-coupling constant develops a pronounced peak whose magnitude depends on the temperature and density of the medium. Remarkably, around the critical point at MeV and MeV, the self-coupling constant is enhanced by more than a factor of seven compared to its vacuum value, a feature that to the best of our knowledge has not been reported in previous studies. Such a strong amplification at the phase boundary indicates that axion-mediated interactions could play an important role in shaping the structure and stability of compact stars, with potential implications for their evolution and observable astrophysical signatures.

    hep-phastro-ph.HEnucl-thEPJC(2025)·2 citations
  11. 11

    Does the suppression shown at LHC in O-O collisions follow the systematics obtained for A-A collisions ?

    M.Petrovici🇷🇴 · A.Pop🇷🇴

    In this paper we present to what extent recent experimental results obtained for suppression in O-O collisions at =5.36 TeV fit into the systematics for much heavier systems. The systematics with which the comparison is made was published a few years ago \cite{Pet_1} in terms of charged particles suppression as a function of and . The values of at and experimentally measured and estimated by Glauber MC, respectively, for O-O collisions are in good agreement with the systematics obtained for A-A collisions.

    nucl-exnucl-th0 citations
  12. 12

    Topological production of charmonia with event-shape engineering in collisions at TeV using PYTHIA8

    Aswathy Menon Kavumpadikkal Radhakrishnan🇮🇳 · Suraj Prasad🇮🇳 · Neelkamal Mallick🇮🇳 · Raghunath Sahoo🇮🇳

    The production of heavy quarks (charm and beauty) in high-energy hadronic and nuclear collisions provides an excellent testing ground for the theory of strong interactions and validates models based on quantum chromodynamics (QCD). In this work, prompt and nonprompt production of in collisions at TeV are studied as a function of transverse spherocity using PYTHIA8. is reconstructed via its electromagnetic decay to dielectrons and dimuons, in mid- and forward-rapidity, respectively. Transverse spherocity, an event shape observable, is used to distinguish hard QCD events from the softer, isotropic ones. In PYTHIA8, the production of can be influenced by the average number of multiple parton interactions (), owing to the underlying events (UE), which have a dominant contribution to particle production at lower transverse momentum. Since transverse spherocity is correlated to , this can serve as an experimentally accessible tool for event selection to study the underlying QCD processes influencing the prompt and nonprompt production. This study reveals the correlation between heavy-flavor production dynamics and topological event selection in collisions using PYTHIA8, whose relevance awaits experimental validation.

    hep-phhep-exnucl-exnucl-thPRD(2026)·1 citation
  13. 13

    Relativistic recoil as a key to the fine-structure puzzle in muonic

    Konstantin A. Beyer🇩🇪 · Igor A. Valuev🇩🇪 · Zoia A. Mandrykina🇩🇪 · Zewen Sun🇩🇪 · Natalia S. Oreshkina🇩🇪

    The long-standing fine-structure anomaly in muonic Zr is resolved through a rigorous treatment of the relativistic-recoil effect. From a fit of ab initio QED calculations of the muonic Zr spectrum to precision measurements performed four decades ago, we extract a significantly more precise root-mean-square (rms) charge radius with 6-fold improvement in quality of the fit. A 2-parameter Fermi (2pF) distribution is assumed to model the nuclear charge density and yields a best-fit value of rms charge radius of fm (), in agreement with the previous muonic spectroscopy value, but a factor more precise, and 3 larger than the accepted literature value. Additionally, the same analysis has been performed for Sn, where the extracted value of fm () is consistent with the accepted value. These results confirm our assumption that the muonic fine-structure puzzle arose from an incomplete treatment of QED effects and their uncertainties.

    physics.atom-phnucl-th9 citations
  14. 14

    On the possibility of superradiant neutrino emission by atomic condensates

    Massimo Blasone🇮🇹 · Loredana Gastaldo🇩🇪 · Francesco Romeo🇮🇹

    In a recent work [B. J. P. Jones and J. A. Formaggio, Phys. Rev. Lett. 135, 111801 (2025)], the possibility of superradiant neutrino emission from atomic condensates has been theoretically proposed. Subsequent analysis by Y. K. Lu, H. Lin, and W. Ketterle [arXiv:2510.21705] questioned this scenario, emphasizing the limiting role of the fermionic nature of the decayed atoms. In this study, we revisit the problem and discuss under which conditions collective emission phenomena might still emerge in cold-atom systems.

    quant-phhep-phnucl-thPRD(2026)·1 citation
  15. 15

    New Physics Searches via Beam Normal Spin Asymmetry in Bhabha Scattering

    Aleksandr Pustyntsev🇩🇪 · Muthubharathi S. Ramasamy🇩🇪 · Marc Vanderhaeghen🇩🇪

    We examine the sensitivity of the beam normal spin asymmetry in Bhabha scattering to beyond the Standard Model (BSM) mediators, in the context of the JLab polarized positron program. A key property of this observable is that the Standard Model contribution exhibits a zero crossing at a fixed scattering angle, providing a clean, effectively background-free point for these searches. We consider scalar, vector, and axial vector mediators and present projected bounds, finding that scalar and vector scenarios allow a significant extension of the search ranges beyond existing constraints.

    hep-phhep-exnucl-thPRD(2026)·2 citations
  16. 16

    Short-range production of three bottom mesons

    Yong-Hui Lin🇩🇪 · Hans-Werner Hammer🇩🇪 · Ulf-G. Meißner🇩🇪

    Previous investigations of the three-body dynamics of mesons have shown that no Efimov effect arises in systems composed of three and mesons. This implies that the properties of such three-body systems can be described reliably within nonrelativistic effective field theory (NREFT) with short-range interactions using only two-body input, as three-body forces are strongly suppressed. In this work, we present leading-order predictions for the three-body point production rates of systems consisting of three and mesons. These predictions provide a novel way to experimentally probe the - interactions, which play a crucial role in the hadronic-molecule interpretation of the and states. Moreover, they provide a way to test the approximate conformal symmetry predicted for such systems at low energies experimentally.

    hep-phhep-exnucl-thJHEP(2026)·1 citation
  17. 17

    Saturation effects in exclusive vector meson production in DIS

    Oscar Garcia-Montero🇩🇪 · Yannik Hoffmann🇩🇪 · Sören Schlichting🇩🇪

    We investigate saturation effects in exclusive vector meson production in deep inelastic scattering (DIS), where we model fluctuations within the target protons as localized color-charge hotspots. Based on the Color Glass Condensate (CGC) framework and the dipole picture for vector meson production, we examine the dependencies of coherent and incoherent scattering cross sections on the momentum transfer. We draw conclusions on the effectiveness of our hot spot model and the strength of the suppression of the scattering cross sections caused by saturation effects. We find that saturation has mild effects in the given energy and charge-density ranges, but can also show that suppression becomes more prominent as the color-charge density inside the proton increases.

    hep-phnucl-th1 citation
  18. 18

    Speed of sound exceeding the conformal bound in dense QCD-like theories

    Etsuko Itou🇯🇵 · Kei Iida🇯🇵 · Kotaro Murakami🇯🇵 · Daiki Suenaga🇯🇵

    We investigated the phase structure and the equation of state (EoS) for dense two-color QCD at low temperatures using the lattice Monte Carlo simulations. A rich phase structure below the pseudo-critical temperature as a function of quark chemical potential has been revealed. In a high-density regime, we can see a superfluid phase, where the diquark condensate takes a non-zero expectation value. We have newly found that the speed of sound exceeds the conformal bound, which is the value of the relativistic free theory. This talk is based on Refs.~\cite{Iida:2022hyy, Iida:2024irv, Itou:2025vcy}.

    hep-lathep-phnucl-thEPJ Web Conf.(2026)·0 citations
  19. 19

    Analytical Soft Functions for Heavy-Quark Final States at Hadron Colliders

    Ze Long Liu🇨🇳 · Pier Francesco Monni🇨🇭

    We present the first computation of the complete two-loop, fully-differential soft function describing the production of a heavy-quark pair in association with a color-singlet system at hadron colliders. This result constitutes one of the most complex soft functions known to date and it is obtained in closed analytic form for generic multi-dimensional kinematics. This allows us to obtain novel analytic results for the transverse-momentum-dependent and threshold soft functions in this class of processes. We further obtain a decomposition of the soft function into dipole and tripole color correlators, thereby supplying essential building blocks for processes involving a heavy-quark pair produced together with additional light jets at both hadron and lepton colliders. These results represent a key ingredient for advancing precision predictions for heavy-quark physics at the LHC.

    hep-phnucl-thPRL(2026)·5 citations

Affiliations

first authorsco-authorsvia INSPIRE