PaperPanorama

Nuclear Theory·nucl-th

Monday·November 25, 2019

8 papers4 primary·4 cross-listed

  1. 05

    Spectral swaps in a two-dimensional neutrino ring model

    Joshua D. Martin🇺🇸 · J. Carlson🇺🇸 · Huaiyu Duan🇺🇸

    Neutrinos emitted deep within a supernova explosion experience a self-induced index of refraction. In the stationary, one-dimensional (1D) supernova "bulb model", this self-induced refraction can lead to a collective flavor transformation which is coherent among different neutrino momentum modes. Such collective oscillations can produce partial swaps of the energy spectra of different neutrino species as the neutrinos stream away from the proto-neutron star. However, it has been demonstrated that the spatial symmetries (such as the spherical symmetry in the bulb model) can be broken spontaneously by collective neutrino oscillations in multi-dimensional models. Using a stationary, 2D neutrino ring model we demonstrate that there exist two limiting scenarios where collective oscillations may occur. In one limit, the collective flavor transformation begins at a radius with relatively high neutrino densities and develops small-scale flavor structures. The loss of the spatial correlation in the neutrino flavor field results in similar (average) energy spectra for the anti-neutrinos of almost all energies and the neutrinos of relatively high energies. In the other limit, the flavor transformation starts at a radius where the neutrino densities are smaller (e.g., due to the suppression of the high matter density near the proto-neutron star). Although the spatial symmetry is broken initially, it is restored as the neutrino densities decrease, and the neutrinos of different flavors partially swap their energy spectra as in the 1D bulb model. This finding may have interesting ramifications in other aspects of supernova physics.

    hep-phastro-ph.HEnucl-thPRD(2020)·22 citations
  2. 06

    Quark fluctuations and anisotropic confinement in magnetic fields

    Gaoqing Cao🇨🇳 · Toru Kojo🇨🇳

    We study the string tension of quantum chromodynamics (QCD) in external magnetic fields by combining the quasi-particle treatments for quarks with the collective treatments for gluons. We utilize the 1/Nc-expansion (Nc: number of colors) and the framework of Wilson's strong coupling expansion at long distance, and compare the resulting string tensions with the lattice data. The effects of magnetic fields are taken into account through the dielectric functions, which are evaluated from the one-loop polarization due to light flavor quarks with -dependent effective masses . All Landau levels are adopted in the calculations so that we can explore the string tensions from weak to strong magnetic fields. For the effective quark masses, we use a simple parameterization: with the electric charge of a given flavor and an adaptive parameter. We find that the parameter needs to be small, , to qualitatively reproduce the trends of lattice QCD results for . The quantitative agreement is found for and the strong coupling in the infrared.

    hep-phhep-lathep-thnucl-th3 citations
  3. 07

    Tetraquark mixing framework to explain two light-meson nonets

    Hungchong Kim🇰🇷

    In this talk, we summarize our recent works on the tetraquark mixing framework for the two light-meson nonets in the channel, the light nonet [, , , ] and the heavy nonet [, , , ]. We briefly explain this mixing framework and present various phenomenological signatures to support this picture.

    hep-phhep-exnucl-th3 citations
  4. 08

    Anisotropic electrical conductivity of magnetized hot quark matter

    Sabyasachi Ghosh🇮🇳 · Aritra Bandyopadhyay🇧🇷 · Ricardo L. S. Farias🇧🇷 · Jayanta Dey🇮🇳 · Gastão Krein🇧🇷

    We studied the effect of a strong magnetic field () on the electrical conductivity of hot quark matter. The electrical conductivity is a key transport coefficient determining the time dependence and strength of magnetic fields generated in a relativistic heavy-ion collision. A~magnetic field induces Hall anisotropic conduction, phase-space Landau-level quantization and, if sufficiently strong, interferes with prominent QCD phenomena such as dynamical quark mass generation, likely affecting the quark matter electrical conductivity, which depends strongly on the quark masses. To address these issues, we used a quasi-particle description of quark matter in which the electric charge carriers are constituent quarks with temperature- and magnetic-field-dependent masses predicted by a Nambu--Jona-Lasinio model. The model accurately describes recent lattice QCD results showing magnetic catalysis at low temperatures and inverse magnetic catalysis at temperatures close to the pseudo-critical temperature () of the QCD phase transition. We found that the magnetic field increases the conductivity component parallel to it and decreases the transverse component, in qualitative agreement with recent lattice QCD results. In addition, we found that: (1)~the space anisotropy of the conductivity increases with~, (2)~the longitudinal conductivity increases due to phase-space Landau-level quantization, (3)~a lowest Landau level approximation behaves poorly for temperatures close to , and (5)~inverse magnetic catalysis leaves a distinctive signal in all components of the conductivity, a prominent peak at . Our study adds to the existing body of work on the hot quark matter electrical conductivity by incorporating nontrivial temperature and magnetic field effects on dynamical mass generation.

    hep-phnucl-thPRD(2020)·49 citations

Affiliations

first authorsco-authorsvia INSPIRE