PaperPanorama

Nuclear Theory·nucl-th

Tuesday·November 19, 2024

21 papers9 primary·12 cross-listed

  1. 01

    [Submitted on 16 Nov 2024]

    Effect of the near-proton-emission threshold resonance in B on the branching ratio of beta-delayed proton emission from Be

    Nguyen Le Anh · Bui Minh Loc

    Beta-delayed proton emission from neutron halo nuclei represents a rare decay process. The existence of the narrow resonance near the proton-emission threshold in explains its unexpectedly high probability. However, the accurate value of the branching ratio remains challenging to determine. We aim to quantify the influence of the narrow resonance near the proton emission threshold on the result of the branching ratio. We employ the Skyrme Hartree-Fock calculation within the potential model to obtain the branching ratio. We derive the single-particle potentials for the halo neutron and the emitting proton with minimal adjustment. Slight variations in the resonance position significantly impact the branching ratio, with the upper limit reaching the order of . Experimental determination of the resonance energy, particularly whether it lies below keV, is crucial for determining the value of the branching ratio.

    Comments:
    10 pages, 4 figures, 3 tables. Accepted for publication in Journal of Physics G
    Subjects:
    Nuclear Theory (nucl-th); Nuclear Experiment (nucl-ex)
    arXiv:
    2411.10700 [pdf]
    J.Phys.G(2026)·0 citations
  2. 02

    [Submitted on 16 Nov 2024]

    Neutron-rich isotope production for in reaction

    S.E. Ocal · O. Yilmaz · S. Ayik · A. S. Umar

    Background: Multi-nucleon transfer (MNT) reactions in actinide systems are a promising method to synthesize transuranium neutron-rich elements. Appropriate theoretical approaches are needed to understand the mechanism behind MNT. Purpose: This work aims to produce neutron-rich isotopes in the super-heavy region through the system. We employ a microscopic approach to elucidate reaction mechanisms, and predict new isotope production that expands the known nuclear chart. Methods: The stochastic mean-field (SMF) approach, including fluctuations and correlations, is used to explain the primary cross-sections in MNT reactions based on the quasi-fission and inverse quasi-fission processes, and a statistical de-excitation model with GEMINI++ code to calculate the secondary fragment cross-sections Results: The calculated cross-sections using SMF and GEMINI++ explain available experimental results for the system at ~MeV energy. This shows the effectiveness and applicability of the quantal diffusion approach based on the SMF theory in heavy-ion collisions. Conclusions: Production of transuranium neutron-rich elements with a proton number up to 101 are obtained with sizable cross-sections. Theoretical results calculated for the Z=102-105 region, for which there are no experimental data, show that the cross-section values would be lower than the microbarn level. SMF theory does not contain any adjustable parameters other than the standard parameters of the energy density functional used in the TDHF theory and is an important approach for the microscopic understanding of reaction mechanisms.

    Comments:
    11 pages, 11 figures
    Subjects:
    Nuclear Theory (nucl-th)
    arXiv:
    2411.10846 [pdf]
    0 citations
  3. 03

    [Submitted on 17 Nov 2024]

    Fragmentation of Nuclear Remnants in Electron-Nucleus Collisions at High Energy as a Nonextensive Process

    Ting-Ting Duan🇨🇳 · Sahanaa Büriechin🇨🇳 · Hai-Ling Lao🇨🇳 · Fu-Hu Liu🇨🇳 · Khusniddin K. Olimov🇺🇿

    Utilizing a partitioning method based on equal (or unequal) probabilities -- without incorporating the alpha-cluster (-cluster) model -- allows for the derivation of diverse topological configurations of nuclear fragments resulting from fragmentation. Subsequently, we predict the multiplicity distribution of nuclear fragments for specific excited nuclei, such as Be, C, and O, which can be formed as nuclear remnants in electron-nucleus () collisions at high energy. Based on the -cluster model, an -cluster structure may result in deviations in the multiplicity distributions of nuclear fragments with charge , compared to those predicted by the partitioning methods. Furthermore, in the framework of Tsallis statistics, the nonextensive generalized temperature, entropy index, and -entropy are obtained from the multiplicity distribution of nuclear fragments with given charge number. Our work shows that fragmentation of nuclear remnants in electron-nucleus collisions at high energy is a nonextensive process.

    Comments:
    22 pages, 7 figures. Please note that the title has been changed
    Subjects:
    Nuclear Theory (nucl-th); Nuclear Experiment (nucl-ex)
    arXiv:
    2411.10989 [pdf]
    Entropy(2026)·0 citations
  4. 04

    [Submitted on 17 Nov 2024]

    On variational trial functions in the extended Thomas-Fermi method

    A. Y. Potekhin · A. I. Chugunov · N. N. Shchechilin · N. Chamel

    Parametrized nucleon density distributions are widely employed for the calculation of the properties of atomic nuclei and dense inhomogeneous matter in compact stars within the Thomas-Fermi method and its extensions. We show that the use of insufficiently smooth parametrizations may deteriorate the accuracy of this method. We discuss and clarify the smoothness condition using the example of the so-called "nuclear pasta" in the neutron star mantle.

    Comments:
    9 pages, Phys. Usp., accepted
    Subjects:
    Nuclear Theory (nucl-th); High Energy Astrophysical Phenomena (astro-ph.HE)
    arXiv:
    2411.11021 [pdf]
    Phys.Usp.(2025)·2 citations
  5. 05

    [Submitted on 18 Nov 2024]

    Quadrupole-hexadecapole correlations in neutron-rich samarium and gadolinium isotopes

    L. Lotina · K. Nomura · R. Rodríguez-Guzmán · L.M. Robledo

    We present an extensive study of quadrupole-hexadecapole correlation effects in even-even Sm and Gd isotopes with neutron number . The calculations are performed in the framework of the Gogny energy density functional (EDF) with the D1S parametrization and the interacting boson model (IBM). The quadrupole-hexadecapole constrained self-consistent mean-field potential energy surface is mapped onto the expectation value of the -boson Hamiltonian. This procedure determines the parameters of the -IBM Hamiltonian microscopically. Calculated excitation energies and transition strengths are compared to the ones obtained with a simpler -IBM, as well as with the experimental data. The Gogny-EDF mapped -IBM reproduces spectroscopic properties of the studied nuclei as reasonably as in the case of the previous -boson mapping calculations that were based on the relativistic EDF, indicating that the axial quadrupole-hexadecapole method is sound regardless of whether relativistic or nonrelativistic EDF is employed. The mapped -IBM improves some of the results in lighter Sm and Gd isotopes compared to the mapped -IBM, implying the existence of significant hexadecapole correlations in those nuclei. For those nuclei with , hexadecapole effects are minor, and the only significant difference between the two boson models can be found in the description of monopole transitions.

    Comments:
    12 pages, 12 figures
    Subjects:
    Nuclear Theory (nucl-th); Nuclear Experiment (nucl-ex)
    arXiv:
    2411.11331 [pdf]
    PRC(2025)·7 citations
  6. 06

    [Submitted on 18 Nov 2024]

    1+1 dimensional relativistic viscous non-resistive magnetohydrodynamics with longitudinal boost invariance

    Ze-Fang Jiang🇨🇳 · Shuo-Yan Liu🇨🇳 · Tian-Yu Hu🇨🇳 · Huang-Jing Zheng🇨🇳 · Duan She🇨🇳

    We study 1+1 dimensional relativistic non-resistive magnetohydrodynamics (MHD) with longitudinal boost invariance and shear stress tensor. Several analytical solutions that describe the fluid temperature evolution under the equation of state (EoS) are derived, relevant to relativistic heavy-ion collisions. Extending the Victor-Bjorken ideal MHD flow to include non-zero shear viscosity, two perturbative analytical solutions for the first-order (Navier-Stokes) approximation are obtained. For small, power-law evolving external magnetic fields, our solutions are stable and show that both magnetic field and shear viscosity cause fluid heating with an early temperature peak, align with the numerical results. In the second-order (Israel-Stewart) theory, our findings show that the combined presence of magnetic field and shear viscosity leads to a slow cooling rate of fluid temperature, with initial shear stress significantly affecting temperature evolution of QGP.

    Comments:
    12 pages, 7 figures. Comments are welcome
    Subjects:
    Nuclear Theory (nucl-th); High Energy Physics — Phenomenology (hep-ph)
    arXiv:
    2411.11398 [pdf]
    CPC(2025)·4 citations
  7. 07

    [Submitted on 18 Nov 2024]

    Fermionic Neural Networks through the lens of Group Theory

    J. Rozalén Sarmiento · A. Rios

    We present an overview of the method of Neural Quantum States applied to the many-body problem of atomic nuclei. Through the lens of group representation theory, we focus on the problem of constructing neural-network ansätze that respect physical symmetries. We explicitly prove that determinants, which are among the most common methods to build antisymmetric neural-network wave functions, can be understood as the result of a group convolution. We also identify the reason why this construction is so efficient in practice compared to other group convolutional operations. We conclude that group representation theory is a promising avenue to incorporate explicitly symmetries in Neural Quantum States.

    Comments:
    6 pages, Contribution to the proceedings of the 10th International Conference on Quarks and Nuclear Physics (QNP2024)
    Subjects:
    Nuclear Theory (nucl-th); Quantum Physics (quant-ph)
    arXiv:
    2411.11605 [pdf]
    PoS(2025)·0 citations
  8. 08

    [Submitted on 18 Nov 2024]

    input to neutron stars from hypernuclear data

    Eliahu Friedman🇮🇱 · Avraham Gal🇮🇱

    This work is a sequel to our two 2023 publications [PLB 837 137669, NPA 1039 122725] where fitting 14 1 and 1 single-particle binding energies in hypernuclei across the periodic table led to a well-defined -nucleus optical potential. The potential consists of a Pauli modified linear-density () and a quadratic-density () terms. The present work reports on extending the above analysis to 21 single-particle data points input by including 1 and 1 states in medium-weight and heavy hypernuclei. The upgraded results for the and potential depths at nuclear-matter density ~fm, ~MeV and ~MeV together with the total depth ~MeV, agree within errors with the earlier results. The hypernuclear overbinding associated with the -induced potential depth agrees quantitatively with a recent combined analysis of low-energy scattering data and correlation functions [PLB 850 (2024) 138550]. These results, particularly the size of the repulsive , provide an essential input towards resolving the 'hyperon puzzle' in the core of neutron stars. We also show that a key property of our -induced potential term, i.e. a need to suppress the quadratic-density term involving an excess neutron and a core nucleon, can be tested in the forthcoming JLab E12-15-008 experiment.

    Comments:
    10 pages, 3 figures, 1 table. Submitted to Proceedings of International Conference on Exotic Atoms and Related Topics and Conference on Low Energy Antiprotons (EXA-LEAP2024)
    Subjects:
    Nuclear Theory (nucl-th); Nuclear Experiment (nucl-ex)
    arXiv:
    2411.11751 [pdf]
    PoS(2025)·5 citations
  9. 09

    [Submitted on 18 Nov 2024]

    An introduction to relativistic spin hydrodynamics

    Xu-Guang Huang🇨🇳

    Spin polarization and spin transport are common phenomena in many quantum systems. Relativistic spin hydrodynamics provides an effective low-energy framework to describe these processes in quantum many-body systems. The fundamental symmetry underlying relativistic spin hydrodynamics is angular momentum conservation, which naturally leads to inter-conversion between spin and orbital angular momenta. This inter-conversion is a key feature of relativistic spin hydrodynamics, closely related to entropy production and introducing ambiguity in the construction of constitutive relations. In this article, we present a pedagogical introduction to relativistic spin hydrodynamics. We demonstrate how to derive the constitutive relations by applying local thermodynamic laws and explore several distinctive aspects of spin hydrodynamics. These include the pseudo-gauge ambiguity, the behavior of the system in the presence of strong vorticity, and the challenges of modeling the freeze-out of spin in heavy-ion collisions. We also outline some future prospects for spin hydrodynamics.

    Comments:
    Version 2, 35 pages. Invited review article for Nucl.Sci.Tech. Published version
    Subjects:
    Nuclear Theory (nucl-th); High Energy Physics — Phenomenology (hep-ph); Nuclear Experiment (nucl-ex); Fluid Dynamics (physics.flu-dyn)
    arXiv:
    2411.11753 [pdf]
    Nucl.Sci.Tech.(2025)·35 citations
  10. 10

    [Submitted on 15 Nov 2024] (cross-list from hep-ph)

    Detecting the QCD axion via the ferroaxionic force with piezoelectric materials

    Asimina Arvanitaki🇨🇦 · Jonathan Engel🇺🇸 · Andrew A. Geraci🇺🇸 · Alexander Hepburn🇨🇦 · Amalia Madden🇺🇸 · Ken Van Tilburg🇺🇸

    We show that piezoelectric materials can be used to source virtual QCD axions, generating a new axion-mediated force. Spontaneous parity violation within the piezoelectric crystal combined with time-reversal violation from aligned spins provide the necessary symmetry breaking to produce an effective in-medium scalar coupling of the axion to nucleons up to 7 orders of magnitude larger than that in vacuum. We propose a detection scheme based on nuclear spin precession caused by the axion's pseudoscalar coupling to nuclear spins. This signal is resonantly enhanced when the distance between the source crystal and the spin sample is modulated at the spin precession frequency. Using this effect, future experimental setups can be sensitive to the QCD axion in the unexplored mass range from to .

    Comments:
    5+4 pages, 3+1 figures V2: matches published version
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Experiment (hep-ex); Nuclear Theory (nucl-th)
    arXiv:
    2411.10516 [pdf]
    PRL(2026)·7 citations
  11. 11

    [Submitted on 15 Nov 2024] (cross-list from astro-ph.HE)

    Star Log-extended eMulation: a method for efficient computation of the Tolman-Oppenheimer-Volkoff equations

    Sudhanva Lalit · Alexandra C. Semposki · Joshua M. Maldonado

    We emulate the Tolman-Oppenheimer-Volkoff (TOV) equations, including tidal deformability, for neutron stars using a new method based upon the Dynamic Mode Decomposition (DMD). This method, which we call Star Log-extended eMulation (SLM), utilizes the underlying logarithmic behavior of the differential equations to enable accurate emulation of the nonlinear system. We show predictions for well-known equations of state (EOSs) with fixed parameters using the SLM, accurately recreating high-fidelity results while achieving a computational speed-up of . We test our parametric SLM method for a two-parameter quarkyonic EOS against high-fidelity RK4 TOV calculations and find a computational speedup of . Hence, SLM is an efficient emulator for the numerous TOV evaluations required by multi-messenger astrophysical frameworks that infer constraints on the EOS. The ability of the SLM algorithm to learn a mapping between parameters of the EOS and subsequent neutron star properties also opens up potential extensions for assisting in computationally prohibitive uncertainty quantification (UQ) for any type of EOS. The source code for the methods employed in this work is openly available in a public GitHub repository for community modification and use.

    Comments:
    13 pages, 3 figures, 4 tables
    Subjects:
    High Energy Astrophysical Phenomena (astro-ph.HE); General Relativity and Quantum Cosmology (gr-qc); Nuclear Theory (nucl-th); Computational Physics (physics.comp-ph)
    arXiv:
    2411.10556 [pdf]
    PRResearch(2025)·6 citations
  12. 12

    [Submitted on 15 Nov 2024] (cross-list from nucl-ex)

    Large quadrupole deformation in Ne challenges rotor model and modern theory: urging for clusters in nuclei

    C. V. Mehl🇿🇦 · J. N. Orce🇿🇦 · C. Ngwetsheni🇿🇦 · P. Marević🇭🇷 · B. A. Brown🇺🇸 · J. D. Holt🇨🇦 · M. Kumar Raju🇿🇦 · E. A. Lawrie🇿🇦 · K. J. Abrahams🇿🇦 · P. Adsley🇿🇦 · E. H. Akakpo🇿🇦 · R. A. Bark🇿🇦 and 22 other authors

    The spectroscopic quadrupole moment of the first excited state, , at 1.634 MeV in Ne was determined from sensitive reorientation-effect Coulomb-excitation measurements using a heavy target and safe energies well below the Coulomb barrier. Particle- coincidence measurements were collected at iThemba LABS with a digital data-acquisition system using the {\sc AFRODITE} array coupled to an annular, doubled-sided silicon detector. A precise value of eb was determined at backward angles in agreement with the only safe-energy measurement prior to this work, eb. This result adopts 1 shell-model calculations of the nuclear dipole polarizability of the 2 state that contributes to the effective quadrupole interaction and determination of . It disagrees, however, with the ideal rotor model for axially-symmetric nuclei by almost . Larger discrepancies are computed by modern state-of-the-art calculations performed in this and prior work, including {\it ab initio} shell model with chiral effective interactions and the multi-reference relativistic energy density functional ({\sc MR-EDF}) model. The intrinsic nucleon density of the 2 state in Ne calculated with the {\sc MR-EDF} model illustrates the presence of clustering, which explains the largest discrepancy with the rotor model found in the nuclear chart and motivates the explicit inclusion of clustering for full convergence of collective properties.

    Comments:
    8 pages, 8 figures
    Subjects:
    Nuclear Experiment (nucl-ex); High Energy Physics — Experiment (hep-ex); Nuclear Theory (nucl-th)
    arXiv:
    2411.10598 [pdf]
    PRC(2025)·2 citations
  13. 13

    [Submitted on 16 Nov 2024] (cross-list from hep-ph)

    Self-consistent thermodynamical treatment for quark matter in quasi-particle model at finite temperature

    Suman Pal🇮🇳 · Gargi Chaudhuri🇮🇳

    In this work, we have studied the medium effects in strange quark matter in the framework of a grand-canonical ensemble using the phenomenological quasi-particle model. This model is studied with proper self-consistent thermodynamical treatment by incorporating chemical potential-dependent quark mass. We have also included the vector interaction in a self-consistent way. The main aim of this work is to explore the proper thermodynamic treatment in addressing the medium effects at both zero and finite temperatures. In the case of the finite temperature, we explore the study of self-consistent thermodynamics in the isothermal as well as the isentropic processes. The effect of finite temperature and lepton fraction have been studied on the equation of state, speed of sound, and particle fraction. The and diagrams are found to be consistent with the observational constraints.

    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Astrophysical Phenomena (astro-ph.HE); Nuclear Theory (nucl-th)
    arXiv:
    2411.10735 [pdf]
    PRD(2024)·7 citations
  14. 14

    [Submitted on 17 Nov 2024] (cross-list from nucl-ex)

    Measurement of enhanced electric dipole transition strengths at high spin in Ru: Possible observation of octupole deformation

    A. Karmakar · Nazira Nazir · P. Datta · J. A. Sheikh · S. Jehangir · G. H. Bhat · S. S. Nayak · Soumik Bhattacharya · Suchorita Paul · Snigdha Pal · S. Bhattacharyya · G. Mukherjee and 10 other authors

    The majority of atomic nuclei have deformed shapes and nearly all these shapes are symmetric with respect to reflection. There are only a few reflection asymmetric pear-shaped nuclei that have been found in actinide and lanthanide regions, which have static octupole deformation. These nuclei possess an intrinsic electric dipole moment due to the shift between the center of charge and the center of mass. This manifests in the enhancement of the electric dipole transition rates. In this article, we report on the measurement of the lifetimes of the high spin levels of the two alternate parity bands in Ru through the Doppler Shift Attenuation Method. The estimated electric dipole transition rates have been compared with the calculated transition rates using the triaxial projected shell model without octupole deformation, and are found to be an order of magnitude enhanced. Thus, the observation of seven inter-leaved electric dipole transitions with enhanced rates establish Ru as possibly the first octupole deformed nucleus reported in the A 100 mass region.

    Subjects:
    Nuclear Experiment (nucl-ex); Nuclear Theory (nucl-th)
    arXiv:
    2411.10976 [pdf]
    PRC(2024)·2 citations
  15. 15

    [Submitted on 17 Nov 2024] (cross-list from astro-ph.HE)

    Evidence of non-Solar elemental composition in the clocked X-ray burster SRGA J144459.2604207

    Akira Dohi · Nobuya Nishimura · Ryosuke Hirai · Tomoshi Takeda · Wataru Iwakiri · Toru Tamagawa · Amira Aoyama · Teruaki Enoto · Satoko Iwata · Yo Kato · Takao Kitaguchi · Tatehiro Mihara and 4 other authors

    In February and March 2024, a series of many Type I X-ray bursts from the accreting neutron star SRGA J144459.2604207, which has been identified by multiple X-ray satellites, with the first reports coming from INTEGRAL and NinjaSat. These observations reveal that after exhibiting very regular behavior as a ``clocked'' burster, the peak luminosity of the SRGA J144459.2604207 X-ray bursts shows a gradual decline. The observed light curves exhibit a short plateau feature, potentially with a double peak, followed by a rapid decay in the tail-features unlike those seen in previously observed clocked bursters. In this study, we calculate a series of multizone X-ray burst models with various compositions of accreted matter, specifically varying the mass fractions of hydrogen (), helium (), and heavier CNO elements or metallicity (). We demonstrate that a model with higher and/or lower compared to the solar values can reproduce the observed behavior of SRGA J144459.2604207. Therefore, we propose that this new X-ray burster is likely the first clocked burster with non-solar elemental compositions. Moreover, based on the X-ray burst light curve morphology in the decline phase observed by NinjaSat, a He-enhanced model with seems preferred over high-metallicity cases. We also give a brief discussion on the implications for the neutron star mass, binary star evolution, inclination angle, and the potential for a high-metallicity scenario, the last of which is closely related to the properties of the hot CNO cycle.

    Comments:
    7 pages, 5 figures, accepted for publication in PASJ Letter
    Subjects:
    High Energy Astrophysical Phenomena (astro-ph.HE); Solar and Stellar Astrophysics (astro-ph.SR); Nuclear Theory (nucl-th)
    arXiv:
    2411.10993 [pdf]
    Publ.Astron.Soc.Jap.(2025)·6 citations
  16. 16

    [Submitted on 17 Nov 2024] (cross-list from hep-ph)

    Simultaneous Estimation of Elliptic Flow Coefficient and Impact Parameter in Heavy-Ion Collisions using CNN

    Praveen Murali🇮🇳 · Sadhana Dash🇮🇳 · Basanta Kumar Nandi🇮🇳

    A deep learning based method with Convolutional Neural Network (CNN) algorithm is developed for simultaneous determination of the Elliptic Flow coefficient () and the Impact Parameter in Heavy-Ion Collisions at relativistic energies. The proposed CNN is trained on PbPb collisions at = 5.02 TeV with minimum biased events simulated with the AMPT event generator. A total of twelve models were built on different input and output combinations and their performances were evaluated. The predictions of the CNN models were compared to the estimations of the simulated and experimental data. The deep learning model seems to preserve the centrality and dependence of at the LHC energy together with predicting successfully the impact parameter with low margins of error. This is the first time a CNN is built to predict both and the impact parameter simultaneously in heavy-ion system.

    Comments:
    First simultaneous estimate of elliptic flow and impact parameter using CNN
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); Nuclear Experiment (nucl-ex); Nuclear Theory (nucl-th)
    arXiv:
    2411.11001 [pdf]
    1 citation
  17. 17

    [Submitted on 18 Nov 2024] (cross-list from hep-ph)

    New multinucleon knockout model in NuWro Monte Carlo generator

    Hemant Prasad🇵🇱 · Jan T. Sobczyk🇵🇱 · Artur M. Ankowski🇵🇱 · J. Luis Bonilla🇵🇱 · Rwik Dharmapal Banerjee🇵🇱 · Krzysztof M. Graczyk🇵🇱 · Beata E. Kowal🇵🇱

    We present the implementation and results of a new model for the n-particle n-hole () contribution in the NuWro event generator, grounded in the theoretical framework established by the Valencia group in 2020. For the component, we introduce a novel nucleon sampling function with tunable parameters to approximate correlations in the momenta of outgoing nucleons. These parameters are calibrated by comparing our results to those of the Valencia model across a range of incoming neutrino energies. In addition, our model incorporates a distinct contribution from the mechanism. We discuss the differences between the new NuWro implementation, the original Valencia model, and the previous NuWro version, focusing on the distribution of outgoing nucleon momenta. Finally, we assess the impact of the hadronic model on experimental analyses involving hadronic observables.

    Comments:
    17 pages, 11 figures
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Experiment (hep-ex); Nuclear Theory (nucl-th)
    arXiv:
    2411.11523 [pdf]
    PRD(2025)·16 citations
  18. 18

    [Submitted on 18 Nov 2024] (cross-list from hep-ph)

    Prospective report of the French QCD community to the ESPPU 2025 with respect to the program of the LHC Run 5 and beyond and future colliders at CERN

    Carolina Arata🇫🇷 · François Arleo🇫🇷 · Benjamin Audurier🇫🇷 · Alberto Baldisseri🇫🇷 · Nicole Bastid🇫🇷 · Guillaume Batigne🇫🇷 · Iouri Belikov🇫🇷 · Marcus Bluhm🇫🇷 · Francesco Bossu🇫🇷 · Hervé Borel🇫🇷 · Renaud Boussarie · Javier Castillo Castellanos🇫🇷 and 50 other authors

    This document summarizes the prospective physics plans of the French QCD and Heavy-Ion community, including the experimental programs at the LHC Run 5 and beyond and future colliders at CERN, within the context of the French contribution to the update of the European Strategy in Particle Physics (ESPPU 2025), as discussed in the workshop on European Strategy for Particle Physics Update 2025 organised by the QCD GdR in Oct. 2024.

    Comments:
    6.5 pages without title page and without references, no figures. Keywords: QCD, Heavy Ions, Quark Gluon Plasma, LHC, FCC
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Experiment (hep-ex); Nuclear Experiment (nucl-ex); Nuclear Theory (nucl-th)
    arXiv:
    2411.11669 [pdf]
    0 citations
  19. 19

    [Submitted on 18 Nov 2024] (cross-list from hep-ph)

    Exotic phases in finite-density theories

    Michael C. Ogilvie🇺🇸 · Moses A. Schindler🇺🇸 · Stella T. Schindler🇺🇸

    Lattice theories with complex actions share many key features with finite-density QCD including a sign problem and symmetry. Complex spin and gauge models exhibit a generalized Kramers-Wannier duality mapping them onto chiral spin and gauge models, which are simulatable with standard lattice methods in large regions of parameter space. The Migdal-Kadanoff real-space renormalization group (RG) preserves this duality, and we use it to compute the approximate phase diagram of both spin and gauge models in dimensions one through four. Chiral spin models are known to exhibit a Devil's Flower phase structure, with inhomogeneous phases which can be thought of as analogues of chiral spirals. Out of the large class of models we study, we find that only chiral spin models and their duals have a Devil's Flower structure with an infinite set of inhomogeneous phases, a result we attribute to Elitzur's theorem. We also find that different forms of the Migdal-Kadanoff RG produce different numbers of phases, a violation of the expectation for universal behavior from a real-space RG. We discuss extensions of our work to models, SU() models and nonzero temperature.

    Comments:
    22 pages, 8 figures. To appear in JHEP
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Lattice (hep-lat); High Energy Physics — Theory (hep-th); Nuclear Theory (nucl-th)
    arXiv:
    2411.11773 [pdf]
    JHEP(2025)·4 citations
  20. 20

    [Submitted on 18 Nov 2024] (cross-list from hep-ph)

    Energy-Energy Correlator for jet production in and collisions

    João Barata🇨🇭 · Zhong-Bo Kang🇺🇸 · Xoán Mayo López🇪🇸 · Jani Penttala🇺🇸

    In this Letter, we study the collinear limit of the Energy-Energy Correlator (EEC) in single-inclusive jet production in proton-proton () and proton-nucleus () collisions. We introduce a non-perturbative model that allows us to describe the EEC in the entire angular region of the current experiments. Our results for collisions show excellent agreement with CMS and ALICE data over a wide range of jet transverse momenta. For collisions, we include modifications from the nuclear medium, and our predictions align well with the trends observed in recent ALICE measurements.

    Comments:
    7 pages, 2 figures, 2 pages of supplementary material; v2: updated figures, matches published version
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Experiment (hep-ex); Nuclear Experiment (nucl-ex); Nuclear Theory (nucl-th)
    arXiv:
    2411.11782 [pdf]
    PRL(2025)·43 citations
  21. 21

    [Submitted on 18 Nov 2024] (cross-list from astro-ph.HE)

    Let there be neutrons! Hadronic photoproduction from a large flux of high-energy photons

    Matthew R. Mumpower · Tsung-Shung H. Lee · Nicole Lloyd-Ronning · Brandon L. Barker · Axel Gross · Samuel Cupp · Jonah M. Miller

    We propose that neutrons may be generated in high-energy, high-flux photon environments via photo-induced reactions on pre-existing baryons. These photohadronic interactions are expected to occur in astrophysical jets and surrounding material. Historically, these reactions have been attributed to the production of high-energy cosmic rays and neutrinos. We estimate the photoproduction off of protons in the context of gamma-ray bursts, where it is expected there will be sufficient baryonic material that may be encompassing or entrained in the jet. We show that typical stellar baryonic material, even material completely devoid of neutrons, can become inundated with neutrons in situ via hadronic photoproduction. Consequently, this mechanism provides a means for collapsars and other astrophysical sites containing substantial flux of high-energy photons to be favorable for neutron-capture nucleosynthesis.

    Comments:
    Published version appearing in ApJ; fixed TSHL's acknowledgements
    Subjects:
    High Energy Astrophysical Phenomena (astro-ph.HE); Solar and Stellar Astrophysics (astro-ph.SR); Nuclear Theory (nucl-th)
    arXiv:
    2411.11831 [pdf]
    ApJ(2025)·7 citations

Affiliations

first authorsco-authorsvia INSPIRE