PaperPanorama

Nuclear Theory·nucl-th

Wednesday·April 7, 2021

12 papers7 primary·5 cross-listed

  1. 01

    Auxiliary Function Approach for Determining Symmetry Energy at Supra-saturation Densities

    Bao-Jun Cai🇨🇳 · Bao-An Li🇺🇸

    Nuclear symmetry energy at density is normally expanded or simply parameterized as a function of in the form of using its magnitude , slope , curvature and skewness at the saturation density of nuclear matter. Much progress has been made in recent years in constraining especially the and parameters using various terrestrial experiments and astrophysical observations. However, such kind of expansions/parameterizations do not converge at supra-saturation densities where is not small enough, hindering an accurate determination of high-density even if its characteristic parameters at are all well determined by experiments/observations. By expanding the in terms of a properly chosen auxiliary function with a parameter fixed accurately by an experimental value at a reference density , we show that the shortcomings of the -expansion can be completely removed or significantly reduced in determining the high-density behavior of . In particular, using two significantly different auxiliary functions, we show that the new approach effectively incorporates higher -order contributions and converges to the same much faster than the conventional -expansion at densities . Several quantitative demonstrations using Monte Carlo simulations are given.

    nucl-thastro-ph.HEnucl-exPRC(2021)·15 citations
  2. 02

    -cluster structures above double shell closures via double-folding potentials from chiral effective field theory

    Dong Bai🇨🇳 · Zhongzhou Ren🇨🇳

    -cluster structures above double shell closures are among the cornerstones for nuclear -cluster physics. Semi-microscopic cluster models (SMCMs) are important theoretical models to study their properties. A crucial ingredient of SMCM is the effective potential between the alpha cluster and the doubly magic nucleus. We derive new double-folding potentials between clusters and doubly magic nuclei from soft local chiral nucleon-nucleon potentials given by chiral effective field theory (EFT) at the next-to-next-to-leading order. The -cluster structures in , , , and are explored to validate these new double-folding potentials. The decay of is also studied in the light of recent experimental results. Our study shows that double-folding potentials from EFT are the new reliable effective potentials for the SMCM approach to -cluster structures above double shell closures, with both conceptual and phenomenological merits.

    nucl-thPRC(2021)·12 citations
  3. 03

    Nuclear matrix elements for Majoron emitting double- decay

    Jenni Kotila🇫🇮 · Francesco Iachello🇺🇸

    A complete calculation of the nuclear matrix elements (NME) for Majoron emitting neutrinoless double beta decay within the framework of IBM-2 for spectral indices is presented. By combining the results of this calculation with previously calculated phase space factors (PSF) we give predictions for expected half-lives. By comparing with experimental limits on the half-lives we set limits on the coupling constants of all proposed Majoron-emitting models.

    nucl-thPRC(2021)·14 citations
  4. 04

    Systematic analysis of inner crust composition using the extended Thomas-Fermi approximation with pairing correlations

    Matthew Shelley🇬🇧 · Alessandro Pastore🇬🇧

    We perform a systematic investigation of the chemical composition of the inner crust of a neutron star, using the extended Thomas-Fermi approximation, the Strutinsky integral correction for shell effects, and the BCS approximation for pairing. Fifteen Skyrme functionals were selected, which cover the range of values of important bulk properties of infinite nuclear matter, while also having pure neutron matter (PNM) equation of states (EoS) with varying degrees of stiffness. We find that a functional's low-density PNM EoS is correlated with the number of protons found in the inner crust's nuclear clusters and, in the lower-density region of the inner crust, with the pressure.

    nucl-thPRC(2021)·17 citations
  5. 05

    Nuclear pasta and symmetry energy in the relativistic point-coupling model

    Fan Ji🇨🇳 · Jinniu Hu🇨🇳 · Hong Shen🇨🇳

    Nonuniform structure of low-density nuclear matter, known as nuclear pasta, is expected to appear not only in the inner crust of neutron stars but also in core-collapse supernova explosions and neutron-star mergers. We perform fully three-dimensional calculations of inhomogeneous nuclear matter and neutron-star matter in the low-density region using the Thomas-Fermi approximation. The nuclear interaction is described in the relativistic mean-field approach with the point-coupling interaction, where the meson exchange in each channel is replaced by the contact interaction between nucleons. We investigate the influence of nuclear symmetry energy and its density dependence on pasta structures by introducing a coupling term between the isoscalar-vector and isovector-vector interactions. It is found that the properties of pasta phases in the neutron-rich matter are strongly dependent on the symmetry energy and its slope. In addition to typical shapes like droplets, rods, slabs, tubes, and bubbles, some intermediate pasta structures are also observed in cold stellar matter with a relatively large proton fraction. We find that nonspherical shapes are unlikely to be formed in neutron-star crusts, since the proton fraction obtained in equilibrium is rather small. The inner crust properties may lead to a visible difference in the neutron-star radius.

    nucl-thastro-ph.HEPRC(2021)·16 citations
  6. 06

    Forbidden electron capture on Na and Al in degenerate oxygen-neon cores

    D. F. Strömberg🇩🇪 · G. Martínez-Pinedo🇩🇪 · F. Nowacki🇫🇷

    Stars with an initial mass of -11 solar masses form degenerate oxygen-neon cores following carbon burning. Electron captures in such cores can trigger runaway oxygen burning, resulting in either a collapse or a thermonuclear explosion. We provide a detailed description of the formalism used in previous work and apply it to two further forbidden transitions that are relevant to degenerate oxygen-neon cores: the transition in and the transition in . The relevant nuclear matrix elements are determined through shell model calculations and constraints from CVC theory. We then investigate the astrophysical impact using the stellar evolution code MESA and through timescale arguments. In the relevant temperature range, the forbidden transitions substantially reduce the threshold densities for and . In the MESA models, now occurs immediately following the onset of . The impact on the overall evolution is uncertain: this is due to known difficulties in accounting for convective instabilities triggered by the electron captures. The transition between and may have a minor effect on the early evolution but is unlikely to affect the outcome. The studied transitions should be included when calculating weak interaction rates between Na and Ne for temperatures and between Al and Mg for .

    nucl-thastro-ph.SRPRC(2022)·7 citations
  7. 07

    Spin/Parity Dependent Level Density

    Richard B. Firestone🇺🇸

    It is shown that the Constant Temperature (CT) model of nuclear level density is a direct consequence of a symmetrized Poisson distribution of nuclear level spacings. The standard CT model describing the total level density is shown to be fatally flawed due to discontinuities at the Yrast energies, the onset of new sequences, that disrupt the exponential formula and cause the back shift parameter to become nonphysically negative. A new CT-JPI level density model is proposed with a constant temperature and separate back shift parameters for each sequence. The CT-JPI model is also constrained to reproduce the spin distribution predicted by Ericson's spin distribution function at the neutron separation energy. A fitting procedure is described for determining the temperature , back shifts , and spin cutoff parameters from nuclear structure and resonance data. The CT-JPI model is demonstrated to successfully predict the level densities for a wide range of spins and parities for 46 nuclear with Z=7-92. In variance with earlier predictions the spin cut-off parameters show no mass dependence and instead substantial variation at all mass regions.

    nucl-thnucl-ex1 citation
  8. 08

    Challenges in Solving Chiral Hydrodynamics

    Enrico Speranza🇺🇸 · Fabio S. Bemfica🇧🇷 · Marcelo M. Disconzi🇺🇸 · Jorge Noronha🇺🇸

    We prove that ideal chiral hydrodynamics, as derived from chiral kinetic theory, is acausal and its initial-value problem is ill-posed both in the linearized case around a local equilibrium solution and also in the full nonlinear regime. Therefore, such theory cannot be used to determine how the chiral anomaly affects the hydrodynamic evolution. We show that these fundamental issues can be fixed by using different definitions (frames) for the hydrodynamic fields. This leads to a causal theory of ideal chiral hydrodynamics where the vorticity strength is constrained by the coefficient that encodes the anomaly.

    hep-thhep-phnucl-thPRD(2023)·40 citations
  9. 09

    Measurement of relative isotopic yield distribution of even-even fission fragments from U(,) following ray spectroscopy

    Aniruddha Dey🇮🇳 · D.C. Biswas🇮🇳 · A. Chakraborty🇮🇳 · S. Mukhopadhyay🇮🇳 · A. K. Mondal🇮🇳 · L. S. Danu🇮🇳 · B. Mukherjee🇮🇳 · S. Garg🇨🇳 · B. Maheshwari🇮🇳 · A. K. Jain🇮🇳 · A. Blanc🇫🇷 · G. de France🇫🇷 and 8 other authors

    A detailed investigation on the relative isotopic distributions has been carried out for the first time in case of even-even correlated fission fragments for the U(,) fission reaction. High-statistics data were obtained in a prompt ray spectroscopy measurement during the EXILL campaign at ILL, Grenoble, France. The extensive off-line analysis of the coincidence data have been carried out using four different coincidence methods. Combining the results from 2-dimensional and 3-dimensional coincidence analysis, a comprehensive picture of the relative isotopic yield distributions of the even-even neutron-rich fission fragments has emerged. The experimentally observed results have been substantiated by the theoretical calculations based on a novel approach of isospin conservation, and a reasonable agreement has been obtained. The calculations following the semi-empirical GEF model have also been carried out. The results from the GEF model calculations are found to be in fair agreement with the experimental results.

    nucl-exnucl-thPRC(2021)·12 citations
  10. 10

    Jet Transport Coefficient at the Large Hadron Collider Energies in a Color String Percolation Approach

    Aditya Nath Mishra🇭🇺 · Dushmanta Sahu🇮🇳 · Raghunath Sahoo🇮🇳

    Within the color string percolation model (CSPM), jet transport coefficient, , is calculated for various multiplicity classes in proton-proton and centrality classes in nucleus-nucleus collisions at the Large Hadron Collider energies for a better understanding of the matter formed in ultra-relativistic collisions. is studied as a function of final state charged particle multiplicity (pseudorapiditydensity at midrapidity), initial state percolation temperature and energy density. The CSPM results are then compared with different theoretical calculations from the JET Collaboration those incorporate particle energy loss in the medium.

    hep-phhep-exhep-thnucl-ex+1Physics(2022)·11 citations
  11. 11

    radiative corrections with lattice input

    Chien-Yeah Seng🇩🇪

    We will describe several pioneering efforts in the study of electromagnetic radiative corrections to semileptonic decay processes, with particular emphasis on the role of lattice QCD. These studies are essential for the precise extraction of the matrix element from beta decays of pion, free neutron and nuclei, and are crucial to address several recently-emerged anomalies involving and , which may provide hints for physics beyond the Standard Model.

    hep-lathep-exhep-phnucl-ex+12 citations
  12. 12

    Empirical determination of the energy loss of heavy quarks in nuclear collisions at RHIC and LHC energies

    Somnath De🇮🇳 · Sudipan De🇮🇳 · Prashant Shukla🇮🇳

    Heavy quarks produced in the heavy ion collisions loose energy while propagting in the hot partonic matter which finally fragment to heavy ( or ) mesons. The energy loss suffered by the heavy quarks is imprinted in the nuclear modification factor as a function of transverse momenta () of these heavy mesons. An alternate measure of in-medium energy loss comes through the effective shift in transverse momentum spectra of hadrons recorded in nucleus-nucleus collisions when it is compared to the same in proton-proton collisions. We start by parametrizing invariant momentum yields of heavy mesons in p+p collisions. The fit function from p+p collisions and measured nuclear modification factor in heavy ion collisions are then utilised to obtain the shift in the transeverse mass of heavy mesons produced at the RHIC and LHC experiments.The energy loss so obtained is found to scale with the transverse mass () of heavy mesons through a power law at different energies and centralities of collisions. We have also calculated using theoretical formalism, the total energy loss suffered by a charm quark in quark-gluon plasma produced in Pb~+~Pb collisions at the LHC energies. The evolution of the plasma is described by (2+1) dimensional longitudinal boost-invariant ideal hydrodynamics. It is found that the total energy loss of charm quarks scales with the transverse mass of charm quarks through a similar power law which supports our empirical analysis of energy loss.

    hep-phhep-exnucl-exnucl-thJ.Subatomic Part.Cosmol.(2025)·0 citations

Affiliations

first authorsco-authorsvia INSPIRE