PaperPanorama

Nuclear Theory·nucl-th

Monday·March 16, 2026

10 papers3 primary·7 cross-listed

  1. 01

    How well known is the compressibility of nuclear matter?

    J. Margueron🇺🇸 · E. Khan🇫🇷

    The most accurate approach to determine the compressibility of nuclear matter remains the one based on microscopic Energy Density Functionals (EDFs). Recent analyses yield a value for nuclear incompressibility modulus ~MeV, defined in nuclear matter as the second derivative of the energy per particle at saturation density. However, we demonstrate that the compressibility modulus can be reduced to values shifted by four times the suggested uncertainty, i.e., ~MeV, by providing examples based on models where the second derivative () and third derivative () of the energy per particle at saturation density can be independently varied, while the experimental binding energies, charge radii, and ISGMR data in Sn and Pb are enforced. The present work suggests a new methodology to access the compressibility of nuclear matter from nuclear experiments, still based on microscopic models, but using EDFs containing more flexibility than the ones employed up to now. Consequences of our results for nuclear matter at supra-saturation density are also discussed by exploring the quarkyonic cross-over. We predict that, for our models with low values for , the quark onset density has to be low for neutron stars to exist.

    nucl-th1 citation
  2. 02

    Threshold-Aligned Pygmy Dipole Strength in Astrophysical and Reactions

    T. Ghosh · A. Kaur · N. Paar

    Reaction-rate calculations relevant to r-process nucleosynthesis depend sensitively on the nuclear -strength function (SF). Here we investigate the impact of low-lying pygmy dipole strength (PDS) in and reactions using SF based on relativistic nuclear energy density functional theory and propagate these strengths into Hauser--Feshbach statistical model calculations of the reaction rates. We show that considerable reaction-rate enhancements at temperatures relevant for r-process nucleosynthesis are governed by the alignment of the pygmy dipole strength energy with the neutron separation threshold rather than by the total low-energy strength. Consequently, nuclei such as Ni and Sn, where the PDS energy- alignment occurs, exhibit the strongest effects on reaction-rate enhancements. These results demonstrate that modeling reliable reaction rates in r-process nucleosynthesis necessitates accurate microscopic descriptions of low-energy dipole strength, in close synergy with experimental investigations in the vicinity of neutron threshold.

    nucl-th0 citations
  3. 03

    Parameter adjustment of nuclear leading-order local pairing energy density functionals

    Michael Bender🇫🇷 · Karim Bennaceur🇫🇷 · Valentin Guillon🇫🇷

    (See paper for full abstract) This study reports on the benchmarking of a protocol for the adjustment of the parameters of a local leading-order (LO) T=1 (like-particle) pairing EDF that consists in adjusting the density-dependence of the 1S0 pairing gap at the chemical potential in infinite nuclear matter (INM). When using a suitably chosen reference calculation, this protocol leads to consistent results for the odd-even staggering of masses of spherical and heavy deformed nuclei and also for the rotational moments of inertia calculated in a time-reversal-breaking cranked HFB approach. The implementation of the HFB solver for infinite matter at arbitrary isospin asymmetry used for this study is sketched in appendices. Additional points that are discussed concern (i) the illustration that the gaps at the chemical potential are not necessarily sufficient to completely characterise the pairing interaction in infinite matter, and that adjusting LO pairing EDF to reproduce gaps obtained from finite-range pairing interactions in HFB or from more microscopic calculations can lead to unrealistic predictions for finite nuclei; (ii) the finding that some regions of the parameter space for the density dependence of the T=1 LO pairing EDF lead to a spurious transition to a Bose-Einstein condensate of di-nucleons in spite of producing realistic pairing correlations for well-bound nuclei; (iii) the correlation between effective mass and the parameters of the LO pairing EDF that control the form factor of the density dependence when reproducing pairing gaps in infinite matter, (iv) the significant impact on the odd-even staggering of masses made by either including or not the spin-gradient terms in the particle-hole part of the Skyrme EDF; (v) the sizeable impact of keeping or not the contribution from the density-dependent LO pairing EDF to the mean fields on the odd-even staggering of radii.

    nucl-th1 citation

Affiliations

first authorsco-authorsvia INSPIRE