PaperPanorama

Nuclear Theory·nucl-th

Thursday·September 15, 2016

7 papers3 primary·4 cross-listed

  1. 01

    Study of X(5568) in a unitary coupled-channel approximation of and

    Bao-Xi Sun🇨🇳 · Fang-Yong Dong🇨🇳 · Jing-Long Pang🇨🇳

    The potential of the meson and the pseudoscalar meson is constructed up to the next-to-leading order Lagrangian, and then the and interaction is studied in the unitary coupled-channel approximation, and a resonant state with a mass about and is generated dynamically, which can be associated with the state announced by D0 Collaboration recently. The mass and the decay width of this resonant state depend on the regularization scale in the dimensional regularization scheme, or the maximum momentum in the momentum cutoff regularization scheme. The scattering amplitude of the vector meson and the pseudoscalar meson is calculated, and an axial-vector state with a mass near and is produced. Moreover, their partners in the charm sector are also discussed.

    nucl-thCPC(2017)·15 citations
  2. 02

    A microscopic cranking model for nuclear collective rotation I: rigid-plus-irrotational-flow rotating frame

    Parviz Gulshani

    We derive in a simple manner and from first principles the Inglis semi-classical phenomenological cranking model for nuclear collective rotation. The derivation transforms the nuclear Schrodinger equation (instead of the Hamiltonian) to a rotating frame using a product wavefunction and imposing no constraints on either the wavefunction or the nucleon motion. The difference from Inglis model is that the frame rotation is driven by the motions of the nucleons and not externally. Consequently, the transformed Schrodinger equation is time-reversal invariant, and the total angular momentum is the sum of those of the intrinsic system and rotating frame. In this article, we choose the rotation of the frame to be given by a combination of rigid and irrotational flows. The dynamic angular velocity of the rotating frame is determined by the angular momentum of the frame and by a moment of inertia that is determined by the nature of the flow combination. The intrinsic-system and rotating-frame angular momenta emerge to have opposite signs. The angular momentum of the rotating frame is determined from requiring the expectation of the total angular momentum to have a given value. The transformed Schrodinger equation has, in addition to the Coriolis energy term, a rigid-flow type kinetic energy term that is absent from the conventional cranking model Schrodinger equation. Ignoring the relatively small effect of the fluctuations in the angular velocity and for a self-consistent deformed harmonic oscillator mean-field potential, the resulting Schrodinger equation is solved for the ground-state rotational band excitation energy and quadrupole moment in different configurations of Ne-20 and the results are compared with those of the conventional cranking model and empirical data.

    nucl-th2 citations
  3. 03

    Effect of magnetic field on the photon radiation from quark-gluon plasma in heavy ion collisions

    B.G. Zakharov🇷🇺

    We develop a formalism for the photon emission from the quark-gluon plasma with an external electromagnetic field. We then use it to investigate the effect of magnetic field on the photon emission from the quark-gluon plasma created in collisions. We find that even for very optimistic assumption on the magnitude of the magnetic field generated in collisions its effect on the photon emission rate is practically negligible. For this reason the magnetic field cannot generate a significant azimuthal asymmetry in the photon spectrum.

    nucl-thhep-phEPJC(2016)·38 citations

Affiliations

first authorsco-authorsvia INSPIRE