PaperPanorama

Nuclear Theory·nucl-th

Wednesday·December 11, 2024

12 papers3 primary·9 cross-listed

  1. 01

    [Submitted on 10 Dec 2024]

    Exploring and triton correlation functions in heavy-ion collisions

    Faisal Etminan🇮🇷

    The and triton(t) momentum correlation functions, to be measured in high-energy heavy-ion collisions, are explored. Mainly, STAR detector acquired data provides an opportunity to explore the correlation function. The correlation functions are calculated using an isle-type and spin-averaged potential, also, its sensitivity to changes in potential strength has also been investigated. % Besides, even though there is no experimental data on the triton interaction yet, I constructed potentials based on the first principles HAL QCD and Nijmegen extended soft-core (ESC08c) model of spin- and isospin averaged interactions in single-folding potentials (SFP) approach. Then, the correlation functions are calculated for these two modern potentials as well as for Nijmegen hard-core model D (NHC-D) potential. The numerical results predict that, with good measurement resolution, it might be possible to recognize different potentials with a correlation function at relatively small source sizes, i.e., fm.

    Comments:
    17 pages, 6 figures, 2 Table
    Subjects:
    Nuclear Theory (nucl-th); High Energy Physics — Experiment (hep-ex); Nuclear Experiment (nucl-ex)
    arXiv:
    2412.07295 [pdf]
    J.Phys.G(2025)·3 citations
  2. 02

    [Submitted on 10 Dec 2024]

    Gravity Wave Phase Shift in a Cold Quark Star with a Nonconvex QCD BZT Shock Wave Van Der Waals Equation of State

    Keith Andrew🇺🇸 · Eric Steinfelds🇺🇸 · Kristopher Andrew🇺🇸

    We investigate BZT shocks and the QCD phase transition in the dense core of a cold quark star in beta equilibrium subject to the multicomponent van der Waals (MvdW) equation of state (EoS) as a model of internal structure. When this system is expressed in terms of multiple components, it can be used to explore the impact of a phase transition from a hadronic state to a quark plasma state with a complex clustering structure. The clustering can take the form of colored diquarks or triquarks and bound colorless meson, baryon, or hyperon states at the phase transition boundary. The resulting multicomponent EoS system is nonconvex, which can give rise to Bethe-Zel'dovich-Thompson (BZT) phase changing shock waves. Using the BZT shock wave condition we find constraints on the quark density and examine how this changes the tidal deformability of the compact core. These results are then combined with the TOV equations to find the resulting mass and radius relationship. These state are compared to recent astrophysical high-mass neutron star systems, which may provide evidence for a core that has undergone a quark gluon phase transition such as PSR 0943+10 or GW 190814.

    Comments:
    30 pages, 8 figures, 2 tables, updated parameter range and comparison models
    Subjects:
    Nuclear Theory (nucl-th); High Energy Astrophysical Phenomena (astro-ph.HE)
    arXiv:
    2412.07601 [pdf]
    Astronomy(2025)·1 citation
  3. 03

    [Submitted on 10 Dec 2024]

    Fastest spinning millisecond pulsars: indicators for quark matter in neutron stars?

    Christoph Gärtlein🇵🇹 · Violetta Sagun🇵🇹 · Oleksii Ivanytskyi🇵🇱 · David Blaschke🇵🇱 · Ilidio Lopes🇵🇹

    We study rotating hybrid stars, with a particular emphasis on the effect of a deconfinement phase transition on their properties at high spin. Our analysis is based on a hybrid equation of state (EoS) with a phase transition from hypernuclear matter to color-superconducting quark matter, where both phases are described within a relativistic density functional approach. By varying the vector meson and diquark couplings in the quark matter phase, we obtain different hybrid star sequences with varying extension of the quark matter core, ensuring consistency with astrophysical constraints from mass, radius and tidal deformability measurements. As a result, we demonstrate the impact of an increasing rotational frequency on the maximum gravitational mass, the central energy density of compact stars, the appearance of the quasi-radial oscillations and non-axisymmetric instabilities. We demonstrate that for the most favorable parameter sets with a strong vector coupling, hybrid star configurations with color superconducting quark matter core can describe the fastest spinning and heaviest galactic neutron star (NS) J0952-0607, while it is out of reach for the purely hadronic hypernuclear star configuration. We also revise the previously proposed empirical relation between the Kepler frequency, gravitational mass, and radius of non-rotating NSs, obtained based on the assumption that all NSs, up to the heaviest, are hadronic. We show how the phase transition to quark matter alters this relation and, consequently, the constraints on the dense matter EoS. Our findings reveal that incorporating the hybrid EoS has significant implications for the constraints on the properties of strongly interacting matter and NSs, placing the upper limit on km and km (considering 716 Hz frequency limit from J1748+2446ad) and 11.90~km (for 1000 Hz).

    Comments:
    21 pages, 13 figures, 3 tables
    Subjects:
    Nuclear Theory (nucl-th); High Energy Astrophysical Phenomena (astro-ph.HE); High Energy Physics — Phenomenology (hep-ph)
    arXiv:
    2412.07758 [pdf]
    PRD(2025)·17 citations
  4. 04

    [Submitted on 9 Dec 2024] (cross-list from quant-ph)

    Efficacious qubit mappings for quantum simulations of the C rotational band

    Darin C. Mumma🇺🇸 · Zhonghao Sun🇺🇸 · Alexis Mercenne🇺🇸 · Kristina D. Launey🇺🇸 · Soorya Rethinasamy🇺🇸 · James A. Sauls🇺🇸

    Solving atomic nuclei from first principles places enormous demands on computational resources, which grow exponentially with increasing number of particles and the size of the space they occupy. We present first quantum simulations based on the variational quantum eigensolver for the low-lying structure of the C nucleus that provide acceptable bound-state energies even in the presence of noise. We achieve this by taking advantage of two critical developments. First, we utilize an almost perfect symmetry of atomic nuclei that, in a complete symmetry-adapted basis, drastically reduces the size of the model space. Second, we use the efficacious Gray encoding, for which it has been recently shown that it is resource efficient, especially when coupled with a near band-diagonal structure of the nuclear Hamiltonian.

    Comments:
    5 pages, 4 figures
    Subjects:
    Quantum Physics (quant-ph); Nuclear Theory (nucl-th)
    arXiv:
    2412.06979 [pdf]
    2024 IEEE Computer Society Annual Symposi…·0 citations
  5. 05

    [Submitted on 10 Dec 2024] (cross-list from cs.LG)

    Sim-to-real supervised domain adaptation for radioisotope identification

    Peter Lalor · Henry Adams · Alex Hagen

    Machine learning has the potential to improve the speed and reliability of radioisotope identification using gamma spectroscopy. However, meticulously labeling an experimental dataset for training is often prohibitively expensive, while training models purely on synthetic data is risky due to the domain gap between simulated and experimental measurements. In this research, we demonstrate that supervised domain adaptation can substantially improve the performance of radioisotope identification models by transferring knowledge between synthetic and experimental data domains. We consider two domain adaptation scenarios: (1) a simulation-to-simulation adaptation, where we perform multi-label proportion estimation using simulated high-purity germanium detectors, and (2) a simulation-to-experimental adaptation, where we perform multi-class, single-label classification using measured spectra from handheld lanthanum bromide (LaBr) and sodium iodide (NaI) detectors. We begin by pretraining a spectral classifier on synthetic data using a custom transformer-based neural network. After subsequent fine-tuning on just 64 labeled experimental spectra, we achieve a test accuracy of 96% in the sim-to-real scenario with a LaBr detector, far surpassing a synthetic-only baseline model (75%) and a model trained from scratch (80%) on the same 64 spectra. Furthermore, we demonstrate that domain-adapted models learn more human-interpretable features than experiment-only baseline models. Overall, our results highlight the potential for supervised domain adaptation techniques to bridge the sim-to-real gap in radioisotope identification, enabling the development of accurate and explainable classifiers even in real-world scenarios where access to experimental data is limited.

    Comments:
    32 pages, 9 figures, and 7 tables
    Subjects:
    Machine Learning (cs.LG); Nuclear Theory (nucl-th)
    arXiv:
    2412.07069 [pdf]
    Nucl.Instrum.Meth.A(2026)·3 citations
  6. 06

    [Submitted on 10 Dec 2024] (cross-list from hep-lat)

    Investigation of contributions to nucleon matrix elements

    Constantia Alexandrou🇨🇾 · Giannis Koutsou🇨🇾 · Yan Li🇨🇾 · Marcus Petschlies🇩🇪 · Ferenc Pittler🇨🇾

    We investigate an improved method to extract nucleon matrix elements from lattice 3-point functions using a generalized eigenvalue problem (GEVP) with nucleon and pion-nucleon interpolating fields. Our method avoids the computation of the costly three-point functions that have pion-nucleon interpolators at both source and sink. We demonstrate that excited state contamination from is minimized in nucleon matrix elements of the scalar, vector, pseudoscalar, axial, and tensor currents and discuss our results based on a physical-point ensemble with a pion mass value of 131 MeV. We find that the GEVP is most significant for the isovector pseudoscalar and axial currents.

    Comments:
    9 pages, 5 figures, 41th International Symposium on Lattice Field Theory - Lattice2024
    Subjects:
    High Energy Physics — Lattice (hep-lat); High Energy Physics — Phenomenology (hep-ph); Nuclear Theory (nucl-th)
    arXiv:
    2412.07263 [pdf]
    PoS(2025)·2 citations
  7. 07

    [Submitted on 10 Dec 2024] (cross-list from hep-ph)

    Toward a Direct Measurement of Partial Restoration of Chiral Symmetry at J-PARC E16 via Density-induced Chiral Mixing

    Ren Ejima🇯🇵 · Philipp Gubler🇯🇵 · Chihiro Sasaki🇯🇵 · Kenta Shigaki🇯🇵

    The degeneracy of chiral partners is an ideal signal for measuring the restoration of the spontaneously broken chiral symmetry in QCD. In this work, we investigate the observability of the - degeneracy in the J-PARC E16 experiment, which measures di-electrons emitted from 30 GeV pA collisions. We for this purpose make use of an effective Lagrangian approach, which naturally incorporates the broken charge-conjugation symmetry in nuclear matter and the ensuing anomaly-induced mixing between vector and axial-vector mesons, to compute the spectral function relevant for the experimental measurement. The real-time dynamics of the pA collision is obtained from a transport simulation. Including experimental background and resolution effects on top of that, we find that a signal of the - mixing can be observed around 2.5 with the Run2 statistics planned for the J-PARC E16 experiment with an ideal mixing strength.

    Comments:
    13 pages, 9 figures
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); Nuclear Theory (nucl-th)
    arXiv:
    2412.07399 [pdf]
    PRC(2025)·6 citations
  8. 08

    [Submitted on 10 Dec 2024] (cross-list from hep-ph)

    Implementation and investigation of electron-nucleus scattering in the \textsc{NEUT} neutrino event generator

    Seisho Abe🇯🇵

    Understanding nuclear effects is essential for improving the sensitivity of neutrino oscillation measurements. Validating nuclear models solely through neutrino scattering data is challenging due to limited statistics and the broad energy spectrum of neutrinos. In contrast, electron scattering experiments provide abundant high-precision data with various monochromatic energies and angles. Since both neutrinos and electrons interact via electroweak interactions, the same nuclear models can be applied to simulate both interactions. Thus, high-precision electron scattering data is essential for validating the nuclear models used in neutrino experiments. To enable this, the author has introduced a new electron scattering framework in the \textsc{NEUT} neutrino event generator, covering two interaction modes: quasielastic (QE) and single pion production. \textsc{NEUT} predictions of QE agree well with numerical calculations, supporting the validity of this implementation. From comparisons with \textsc{NEUT} predictions and inclusive electron scattering data, the momentum-dependent removal energy correction is derived, addressing effects beyond the plane wave impulse approximation. This correction is applied to neutrino interactions, observing significant changes in charged lepton kinematics. Notably, the reconstructed neutrino energy distribution shows a peak shift of approximately 20--30\,MeV, which is crucial for accurately measuring neutrino oscillation parameters.

    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Experiment (hep-ex); Nuclear Theory (nucl-th)
    arXiv:
    2412.07466 [pdf]
    PRD(2025)·12 citations
  9. 09

    [Submitted on 10 Dec 2024] (cross-list from hep-ph)

    Electromagnetic form factors of hyperons in the timelike region: A short review

    Ling-Yun Dai🇨🇳 · Johann Haidenbauer🇩🇪 · Ulf-G. Meißner🇩🇪

    We review recent experimental and theoretical results for the electromagnetic form factors of hyperons (Y) in the timelike region, accessible in the reactions . Specifically, we focus on the final states , /, , , and . The system is also discussed.

    Comments:
    9 pages , 8 figures
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Physics — Experiment (hep-ex); Nuclear Theory (nucl-th)
    arXiv:
    2412.07543 [pdf]
    Chin.Phys.Lett.(2025)·10 citations
  10. 10

    [Submitted on 10 Dec 2024] (cross-list from quant-ph)

    Three-dimensional integral Faddeev equations without a certain symmetry

    Mikhail Egorov

    The approach of direct integration of the three-dimensional Faddeev equations with respect to the breakup T-matrix in momentum space for three bodies of different masses is presented. The Faddeev equations are written out explicitly without the requirement for symmetry or antisymmetry of two-body t matrices, taking into account the difference in the masses of three interacting particles. An algorithm for the algebraic search for non-relativistic wave functions of a system of three bodies of different masses is described. A significant change in the domain of logarithmic singularities of the integral kernels of the Faddeev equations from the choice of masses of interacting particles is demonstrated.

    Subjects:
    Quantum Physics (quant-ph); Nuclear Theory (nucl-th)
    arXiv:
    2412.07572 [pdf]
    Few Body Syst.(2025)·2 citations
  11. 11

    [Submitted on 10 Dec 2024] (cross-list from hep-ph)

    On the quantum numbers of the

    Qin-He Yang🇨🇳 · Ling-Yun Dai🇨🇳 · Ulf-G. Meißner🇩🇪

    We study the properties of the , the structure around the threshold that appears in the invariant mass spectrum in the decay process of . Nucleon-antinucleon rescattering is taken into account in our analysis, and the decay amplitude of can be obtained by the distorted wave Born approximation. With these amplitudes, we analyze the contributions to the from different partial waves. Our analysis suggests that the should be isoscalar , and it is generated by the threshold behavior.

    Comments:
    6 pages, 2 figures, to be the same as the published version
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); Nuclear Theory (nucl-th)
    arXiv:
    2412.07599 [pdf]
    PRD(2026)·4 citations
  12. 12

    [Submitted on 10 Dec 2024] (cross-list from hep-ph)

    Probing nonperturbative transverse momentum dependent PDFs with chiral perturbation theory: the asymmetry

    Marston Copeland🇺🇸 · Thomas Mehen🇺🇸

    We use chiral perturbation theory to study the long distance regime of transverse momentum dependent parton distribution functions (TMD PDFs). Chiral corrections to the TMD PDFs are computed from proton to pion/baryon splittings. For consistent power counting, we find that the fraction of the proton's momentum that a pion may carry must be kept small. We make predictions for a asymmetry in the proton's TMD PDFs and find that the effective theory gives a natural exponential suppression of the TMD PDF at long distances. We then explore the effects that additional nonperturbative physics may have on the TMD asymmetry.

    Comments:
    10 pages, 4 figures; fixed typos and updated figures
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); Nuclear Theory (nucl-th)
    arXiv:
    2412.07717 [pdf]
    4 citations

Affiliations

first authorsco-authorsvia INSPIRE