PaperPanorama

Nuclear Theory·nucl-th

Thursday·March 9, 2017

11 papers6 primary·5 cross-listed

  1. 01

    Improved Quark Coalescence for a Multi-Phase Transport Model

    Yuncun He🇨🇳 · Zi-Wei Lin🇺🇸

    The string melting version of a multi-phase transport model is often applied to high-energy heavy-ion collisions since the dense matter thus formed is expected to be in parton degrees of freedom. In this work we improve its quark coalescence component, which describes the hadronization of the partonic matter to a hadronic matter. We removed the previous constraint that forced the numbers of mesons, baryons, and antibaryons in an event to be separately conserved through the quark coalescence process. A quark now could form either a meson or a baryon depending on the distance to its coalescence partner(s). We then compare results from the improved model with the experimental data on hadron , spectra, and in heavy-ion collisions from GeV to TeV. We show that, besides being able to describe these observables for low- pions and kaons, the improved model also better describes the low- baryon observables in general, especially the baryon spectra and antibaryon-to-baryon ratios for multistrange baryons.

    nucl-thnucl-exPRC(2017)·103 citations
  2. 02

    Compositeness of hadron resonances in finite volume

    Yujiro Tsuchida🇯🇵 · Tetsuo Hyodo🇯🇵

    We develop a theoretical framework to quantify the structure of unstable hadron resonances. With the help of the corresponding system in a finite volume, we define the compositeness of resonance states which can be interpreted as a probability. This framework is used to study the structure of the scalar mesons f_0(980) and a_0(980). In both mesons, the Kbar K component dominates about a half of the wave function. The method is also applied to the Lambda(1405) resonance. We argue that a single energy level in finite volume represents the two eigenstates in infinite volume. The KbarK N component of Lambda(1405), including contributions from both eigenstates, is found to be 58%, and the rest is composed of the pi Sigma and other channels.

    nucl-thhep-phPRC(2018)·9 citations
  3. 03

    High-mass twin stars with a multi-polytrope EoS

    D.E. Alvarez-Castillo · D.B. Blaschke

    We show that in the 3-polytropes model of Hebeler et al. \cite{Hebeler:2013nza} for the neutron star equation of state at supersaturation densities a third family of compact stars can be obtained which confirms the possibility of high-mass twin stars that have coincident masses and significantly different radii km. We show that the causality constraint puts severe limitations on the maximum mass of the third family sequence which can be relaxed when this scheme is extended to four polytropes thus mimicking a realistic high-density matter EoS.

    nucl-thastro-ph.HEPRC(2017)·87 citations
  4. 04

    Quantum tunneling with friction

    M. Tokieda · K. Hagino

    Using the phenomenological quantum friction models introduced by Caldirola-Kanai, Kostin, and Albrecht, we study quantum tunneling of a one-dimensional potential in the presence of energy dissipation. To this end, we calculate the tunneling probability using a time-dependent wave packet method. The friction reduces the tunneling probability. We show that the three models provide similar penetrabilities to each other, among which the Caldirola-Kanai model requires the least numerical effort. We also discuss the effect of energy dissipation on quantum tunneling in terms of barrier distributions.

    nucl-thnucl-exquant-phPRC(2017)·18 citations
  5. 05

    Spectral functions for meson and meson in nuclear matter with partial restoration of chiral symmetry

    Daiki Suenaga🇯🇵 · Shigehiro Yasui🇯🇵 · Masayasu Harada🇯🇵

    We investigate the in-medium masses of a meson and a meson and spectral functions for and meson channels in nuclear matter. These mesons are introduced as chiral partner in the chiral symmetry broken vacuum, hence they are useful to explore the partial restoration of the broken chiral symmetry in nuclear matter. We consider the linear sigma model to describe the chiral symmetry breaking. Our study shows that the loop corrections to and meson masses provide a smaller mass splitting at finite density than that in vacuum, whose result indicates a tendency of the restoration of the chiral symmetry. We investigate also the spectral function for meson channel, and find three peaks. The first peak which corresponds to the resonance of meson is broadened by collisions with nucleons in medium, and the peak position shifts to lower mass due to the partial restoration of chiral symmetry as the density increases. The second peak is identified as a threshold enhancement which shows a remarkable enhancement as the density increase. The third peak is Landau damping. The obtained properties of and mesons in nuclear matter will provide useful information for experiments.

    nucl-thhep-phPRC(2017)·21 citations
  6. 06

    Onset of -nuclear binding in a pionless EFT approach

    N. Barnea🇮🇱 · B. Bazak🇫🇷 · E. Friedman🇮🇱 · A. Gal🇮🇱

    and bound states are explored in stochastic variational method (SVM) calculations within a pionless effective field theory (EFT) approach at leading order. The theoretical input consists of regulated and contact terms, and a regulated energy dependent contact term derived from coupled-channel models of the nucleon resonance plus a regulated contact term. A self consistency procedure is applied to deal with the energy dependence of the subthreshold input, resulting in a weak dependence of the calculated -nuclear binding energies on the EFT regulator. It is found, in terms of the scattering length , that the onset of binding He requires a minimal value of Re close to 1 fm, yielding then a few MeV binding in He. The onset of binding He requires a lower value of Re, but exceeding 0.7 fm.

    nucl-thhep-phnucl-exPLB(2017)·37 citations

Affiliations

first authorsco-authorsvia INSPIRE