PaperPanorama

Nuclear Theory·nucl-th

Tuesday·May 20, 2025

11 papers7 primary·4 cross-listed

  1. 08

    On Robust -Spectra Shape Parameter Extraction

    B. C. Rasco · T. Gray · T. Ruland

    Experimental extraction of -shape functions, C(W), is challenging. Comparing different experimental -shapes to each other and to those predicted by theory in a consistent manner is difficult. This difficulty is compounded when different parameterizations of the -shape function are used. Usually some form of a power polynomial of the total electron energy is chosen for this parametrization. This choice results in extracted coefficients that are highly correlated, with their physical meaning and numerical value dependent on the order of polynomial chosen. This is true for both theoretical and experimental coefficients, and leads to challenges when comparing coefficients from polynomials of different orders. Accurately representing the highly correlated uncertainties is difficult and subtle. These issues impact the underlying physical interpretation of shape function parameters. We suggest an alternative approach based on orthogonal polynomials. Orthogonal polynomials offer more stable coefficient extraction which is less dependent on the order of the polynomial, allow for easier comparison between theory and experimental coefficients from polynomials of different orders, and offer some observations on simple physical meaning and on the statistical limits of the extracted coefficients.

    physics.comp-phnucl-exnucl-thphysics.chem-phPRC(2026)·0 citations
  2. 09

    Unbound neutron strength in C and the N=16 shell gap

    J. Lois-Fuentes🇪🇸 · B. Fernández-Domínguez🇪🇸 · F. Delaunay🇫🇷 · X. Pereira-López🇪🇸 · N.A. Orr🇫🇷 · M. Płoszajczak🇫🇷 · N. Michel🇫🇷 · T. Otsuka🇯🇵 · T. Suzuki🇯🇵 · W.N. Catford🇬🇧 · O. Sorlin🇫🇷 · N.L. Achouri🇫🇷 and 52 other authors

    Significant continuum strength has been observed to be populated in C produced in the d(C,p) reaction at a beam energy of 17.2~MeV/nucleon. The strength appears at greater than 2~MeV above the single-neutron decay threshold and has been identified as arising from transfer into the neutron orbital. Guided by shell model predictions the greater majority of the strength is associated with a 3/2 state at an excitation energy of 4.40 MeV and a much weaker 3/2 level at 5.60 MeV. The corresponding total widths were determined to be 3.45 and 1.6 MeV, respectively. From the backward angle proton differential cross sections and the branching ratios for neutron decay to the C(2) level, the corresponding spectroscopic factors to the ground state were deduced to be 0.47 and 0.09. Shell-model calculations employing the phenomenological SFO-tls interaction as well as Gamow Shell-Model calculations including continuum effects are in reasonable agreement with experiment, although the predicted strength lies at somewhat lower energy. The size of the N=16 shell gap () was estimated to be 5.08~MeV - some 1.3~MeV larger than found in the SFO-tls shell model calculation.

    nucl-exnucl-thPLB(2025)·1 citation
  3. 10

    Exploring the spectroscopic features of double-strangeness tetraquark states

    Xuejie Liu🇨🇳 · Haoming Zheng🇨🇳 · Dianyong Chen🇨🇳 · Hongxia Huang🇨🇳 · Jialun Ping🇨🇳

    Since the discovery of the double-charm tetaquark by the LHCb collaboration, the field of the theoretical research on heavy quarks has advanced rapidly, with increasing interest in exploring the light quark sector. In this study, the quark model is employed to systematically analyze the double-strange tetraquark system. Both the meson-meson configuration and diquark-antidiquark configuration are considered. The interactions between hadron pairs under various quantum numbers, as well as the possibilities of bound states and resonances, are evaluated. The results indicate the presence of two bound states, and , with quantum number in single-channel estimations. Additionally, by considering the channel coupling between the two configurations, a bound state with quantum numbers and a mass of approximately MeV is obtained. Moreover, through the application of Resonance Ground Method, a resonance state is identified in the system, with an estimated mass of around 1783 MeV and a decay width of approximately 17 MeV.

    hep-phnucl-thPRD(2026)·1 citation
  4. 11

    Basis light-front quantization approach to deuteron

    Chandan Mondal🇨🇳 · Satvir Kaur🇨🇳 · Jiatong Wu🇨🇳 · Siqi Xu🇨🇳 · Xingbo Zhao🇨🇳 · James P. Vary🇺🇸

    We obtain the deuteron's wave functions as eigenstates of the light-front quantum chromodynamics (QCD) Hamiltonian using a fully relativistic and nonperturbative approach based on light-front quantization, without an explicit confining potential. These eigenstates include six-quark and six-quark--one-gluon components. The deuteron wave function consists of both a singlet-singlet color state and additional hidden color states arising from non-trivial color rearrangements. Our results reveal that while the singlet-singlet state is present, the hidden color states collectively dominate, contributing a larger probability to the deuteron wave function. This highlights the significant role of hidden color components in the QCD description of nuclear structure. Using these wave functions, we investigate the deuteron's electromagnetic properties.

    hep-phhep-thnucl-thJ.Subatomic Part.Cosmol.(2025)·6 citations

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