PaperPanorama

Nuclear Theory·nucl-th

Thursday·October 4, 2018

6 papers3 primary·3 cross-listed

  1. 01

    Nuclear Dipole Response in the Finite-Temperature Relativistic Time Blocking Approximation

    Herlik Wibowo · Elena Litvinova

    The radiative neutron capture reaction rates of the r-process nucleosynthesis are immensely affected by the microscopic structure of the low-energy spectra of compound nuclei. The relativistic (quasiparticle) time blocking approximation (R(Q)TBA) has successfully provided a good description of the low-energy strength, in particular, the strength associated with pygmy dipole resonance, describing transitions from and to the nuclear ground state. The finite-temperature generalization of this method is designed for thermally excited compound nuclei and has the potential to enrich the fine structure of the dipole strength, especially in the low-energy region. The finite-temperature RTBA equations are derived using the Matsubara Green's function formalism. We show that with the help of a temperature-dependent projection operator on the subspace of the imaginary time it is possible to reduce the Bethe-Salpeter equation for the nuclear response function to a single frequency variable equation also at finite temperatures. The approach is implemented self-consistently in the framework of quantum hadrodynamics and keeps the ability of connecting the high-energy scale of heavy mesons and the low-energy domain of nuclear medium polarization effects in a parameter-free way. The presented calculations of the dipole response within a self-consistent relativistic framework reveal that, although the Landau damping plays the leading role in the temperature evolution of the strength distribution, (i) at moderate temperatures the PVC effects remain almost as strong as at and (ii) at high temperatures they are tremendously reinforced because of the formation of the new collective low-energy modes. In the dipole channel, the latter effect is responsible for the "disappearance" of the high-frequency GDR or, in other words, brings the GDR to the low-energy domain.

    nucl-thPRC(2019)·31 citations
  2. 02

    Fluid dynamics for relativistic spin-polarized media

    Wojciech Florkowski🇵🇱 · Bengt Friman🇩🇪 · Amaresh Jaiswal🇮🇳 · Radoslaw Ryblewski🇵🇱 · Enrico Speranza🇩🇪

    We briefly review the basic features of a new framework for relativistic perfect fluid hydrodynamics of polarized systems consisting of particles with spin one half. Using this approach we numerically study the stability of a stationary vortex-like solution, representing global equilibrium of a rotating medium.

    nucl-thhep-phActa Phys.Polon.Supp.(2018)·7 citations
  3. 03

    The role of hidden-charm pentaquark resonance in photoproduction on nuclei near threshold

    E. Ya. Paryev🇷🇺 · Yu. T. Kiselev🇷🇺

    We study the photoproduction from nuclei at near-threshold incident photon energies of 5--11 GeV within the nuclear spectral function approach by considering incoherent direct () and two-step (, ) photon--nucleon charmonium creation processes. We calculate the absolute and relative excitation functions within the different scenarios for in-medium modification of the directly photoproduced mesons. We show that the overall subthreshold production in reactions reveals some sensitivity to adopted in-medium modification scenarios for mesons only if branching ratio 1% and less. Our studies also demonstrate that the presence of the resonance in photoproduction produces above threshold additional enhancements in the behavior of the total creation cross section on nuclei, which could be also studied in the future JLab experiments at the upgraded up to 12 GeV CEBAF facility to provide further evidence for its existence.

    nucl-thnucl-exNPA(2018)·21 citations
  4. 04

    Neutron Lifetime Discrepancy as a Sign of a Dark Sector?

    Bartosz Fornal🇺🇸 · Benjamin Grinstein🇺🇸

    We summarize our recent proposal of explaining the discrepancy between the bottle and beam measurements of the neutron lifetime through the existence of a dark sector, which the neutron can decay to with a branching fraction 1%. We show that viable particle physics models for such neutron dark decays can be constructed and we briefly comment on recent developments in this area.

    hep-phnucl-exnucl-th5 citations
  5. 05

    Simulating the weak death of the neutron in a femtoscale universe with near-Exascale computing

    Evan Berkowitz🇩🇪 · M.A. Clark🇺🇸 · Arjun Gambhir🇺🇸 · Ken McElvain🇺🇸 · Amy Nicholson🇺🇸 · Enrico Rinaldi🇺🇸 · Pavlos Vranas🇺🇸 · André Walker-Loud🇺🇸 · Chia Cheng Chang🇺🇸 · Bálint Joó🇺🇸 · Thorsten Kurth🇺🇸 · Kostas Orginos🇺🇸

    The fundamental particle theory called Quantum Chromodynamics (QCD) dictates everything about protons and neutrons, from their intrinsic properties to interactions that bind them into atomic nuclei. Quantities that cannot be fully resolved through experiment, such as the neutron lifetime (whose precise value is important for the existence of light-atomic elements that make the sun shine and life possible), may be understood through numerical solutions to QCD. We directly solve QCD using Lattice Gauge Theory and calculate nuclear observables such as neutron lifetime. We have developed an improved algorithm that exponentially decreases the time-to solution and applied it on the new CORAL supercomputers, Sierra and Summit. We use run-time autotuning to distribute GPU resources, achieving 20% performance at low node count. We also developed optimal application mapping through a job manager, which allows CPU and GPU jobs to be interleaved, yielding 15% of peak performance when deployed across large fractions of CORAL.

    hep-latcs.DCnucl-thphysics.comp-phSupercomputing 2018, pp. 697-705·11 citations
  6. 06

    The pole structure of low energy scattering amplitudes

    Yu-Fei Wang🇨🇳

    This report presents an investigation of the pion-nucleon elastic scattering in low energy region using a production representation of the partial wave matrix. The phase shifts are separated into contributions from poles and branch cuts, where the left-hand cut term can be evaluated by tree-level covariant baryon chiral perturbation theory. A comparison between the sum of known contributions and the data in - and - wave channels is made. It is found that the known components in and channels are far from enough to saturate the corresponding experimental data, indicating the existence of low-lying hidden poles. The positions of those hidden poles are figured out and the physics behind them are explored.

    hep-phnucl-thEPJ Web Conf.(2019)·0 citations

Affiliations

first authorsco-authorsvia INSPIRE