PaperPanorama

Nuclear Theory·nucl-th

Wednesday·October 18, 2023

11 papers6 primary·5 cross-listed

  1. 07

    Multi-dimensional hadron structure through the lens of gluon Wigner distribution

    Roman Pasechnik🇸🇪 · Marek Taševský🇨🇿

    In this review, we present the current status of phenomenological research on constraining the multi-dimensional proton (and nucleus) structure at high energies through studies of the so-called gluon Wigner distributions. We provide a brief pedagogical introduction into the corresponding theoretical definitions and modelling of exclusive and diffractive scattering observables in terms of the Wigner distribution. Also, we present a detailed outlook into the existing and planned experimental measurements that attempt to constrain the Wigner distribution. We briefly overview possible interconnections between various manifestations of the gluon Wigner distribution emerging, for instance, in azimuthal-angle correlations in (semi)exclusive reactions and elliptic flow measurements in inclusive processes. We also summarise the current knowledge on the most important processes that would potentially enable one to constrain the elliptic gluon density in the proton and to separate it from the genuine effect of hydrodynamic evolution in the flow measurements.

    hep-phnucl-thPhys.Rept.(2024)·17 citations
  2. 08

    Assessing equation of state-independent relations for neutron stars with nonparametric models

    Isaac Legred🇺🇸 · Bubakar O. Sy-Garcia🇺🇸 · Katerina Chatziioannou🇺🇸 · Reed Essick🇨🇦

    Relations between neutron star properties that do not depend on the nuclear equation of state offer insights on neutron star physics and have practical applications in data analysis. Such relations are obtained by fitting to a range of phenomenological or nuclear physics equation of state models, each of which may have varying degrees of accuracy. In this study we revisit commonly-used relations and re-assess them with a very flexible set of phenomenological nonparametric equation of state models that are based on Gaussian Processes. Our models correspond to two sets: equations of state which mimic hadronic models, and equations of state with rapidly changing behavior that resemble phase transitions. We quantify the accuracy of relations under both sets and discuss their applicability with respect to expected upcoming statistical uncertainties of astrophysical observations. We further propose a goodness-of-fit metric which provides an estimate for the systematic error introduced by using the relation to model a certain equation-of-state set. Overall, the nonparametric distribution is more poorly fit with existing relations, with the I-Love-Q relations retaining the highest degree of universality. Fits degrade for relations involving the tidal deformability, such as the Binary-Love and compactness-Love relations, and when introducing phase transition phenomenology. For most relations, systematic errors are comparable to current statistical uncertainties under the nonparametric equation of state distributions.

    astro-ph.HEgr-qcnucl-thPRD(2024)·19 citations
  3. 09

    Kaon Structure in the Nuclear Medium within the Light Front Approach

    G. H. S. O. Yabusaki (Universidade São Judas Tadeu, Universidade Cruzeiro do Sul and Universidade Cidade de São Paulo, Brazil)🇧🇷 · J. P. B. C. de Melo (Universidade Cruzeiro do Sul and Universidade Cidade de São Paulo, Brazil)🇧🇷 · K. Tsushima (Universidade Cruzeiro do Sul and Universidade Cidade de São Paulo, Brazil)🇧🇷 · T. Frederico (Instituto Tecnológico de Aeronáutica, Brazil)🇧🇷 · W. de Paula (Instituto Tecnológico de Aeronáutica, Brazil)🇧🇷

    We study the properties of the charged kaon in symmetric nuclear matter using a Bethe-Salpeter amplitude to model the quark-anti-quark bound state, which is well constrained by previous studies of its vacuum properties. The electromagnetic form factor, charge radius, decay constant and the light-front valence component probability are investigated in symmetric nuclear matter. In order to describe the constituent up and anti-strange quarks in nuclear matter, we adopt the ``quark-meson coupling (QMC) model", which has been widely applied to various hadronic and nuclear phenomena in the nuclear medium.

    hep-phhep-thnucl-thPRD(2024)·8 citations
  4. 10

    Reactions induced by 30 MeV 3He beam on 9Be: Cluster transfer reactions

    Urazbekov Bakytzhan · Issatayev Talgat · Lukyanov Sergey · Azhibekov Aidos · Denikin Andrey · Mendibayev Kayrat · Janseitov Daniyar · Penionzhkevich Yuri · Kuterbekov Kayrat · Zholdybayev Timur

    An experiment has been carried out for studying the cluster structure of Be induced by the He ions at the energy of 30 MeV. As results of the nuclear reaction He + Be the differential cross sections for the exit channels - elastic, inelastic, + Be, He + Be, Li + Li, and Be + He - were measured. Elastic and inelastic scattering data are treated within both the optical model and Coupled channels method. A new set of optical potential was taken for the elastic scattering. The deformation parameter was established for the transition . Cluster transfer reactions are analyzed by means of the coupled reaction channels method. The nuclear reactions with the exit channels He + Be, Li + Li, and Be + He are complemented by two-step transfer mechanisms. The contribution of each reaction mechanisms are shown, and compared with the findings of other authors.

    nucl-exnucl-thCPC(2024)·4 citations
  5. 11

    Dark matter scattering off He in chiral effective field theory

    J. de Vries🇳🇱 · C. Körber🇩🇪 · A. Nogga🇩🇪 · S. Shain🇳🇱

    We study dark matter scattering off He and other light nuclei using chiral effective field theory. We consider scalar DM interactions and include both one- and two-nucleon scattering processes. The DM interactions and nuclear wave functions are obtained from chiral effective field theory and we work up to fourth order in the chiral expansion for the latter to investigate the chiral convergence. The results for the scattering rates can be used to determine the sensitivity of planned experiments to detect relatively light dark matter particles using He. We find that next-to-leading-order scalar currents are smaller than expected from power counting for scattering off He confirming earlier work. However, the results for two-nucleon corrections exhibit a linear regulator dependence indicating potential problems in the applied power counting. We observe a linear correlation between the, in principle not observable, D-wave probability of various light nuclei and the scalar two-nucleon matrix elements, again pointing towards potentially missing contributions.

    hep-phnucl-thEPJC(2024)·8 citations

Affiliations

first authorsco-authorsvia INSPIRE