PaperPanorama

Nuclear Theory·nucl-th

Thursday·August 26, 2021

3 papers2 primary·1 cross-listed

  1. 01

    Role of quadrupole deformation and continuum effects in the "island of inversion'' nuclei F

    Yu-Xuan Luo🇨🇳 · K. Fossez🇺🇸 · Quan Liu🇨🇳 · Jian-You Guo🇨🇳

    The properties of nuclei in the ``island of inversion'' (IOI) around Z=10 and N=20 are the focus of current nuclear physics research. Recent studies showed that F has a negative-parity ground state (g.s.) and thus lies within the southern shore of the IOI, and F presents a halo structure in its g.s., but it is unclear which effects, such as deformation, shell evolution due to tensor forces, or couplings to the continuum, lead to this situation. We investigate the role of quadrupole deformation and continuum effects on the single-particle (s.p.) structure of F from a relativistic mean-field (RMF) approach, and show how both phenomena can lead to a negative-parity g.s. in F and halo structures in F. We solve the Dirac equation in the complex-momentum (Berggren) representation for a potential with quadrupole deformation at the first order obtained from RMF calculations using the NL3 interaction, and calculate the continuum level densities using the Green's function method. We extract s.p. energies and widths from the continuum level densities to construct Nilsson diagrams, and analyse the evolution of both the widths and occupation probabilities of relevant Nilsson orbitals in F and find that some amount of prolate deformation must be present. In addition, we calculate the density distributions for bound Nilsson orbitals near the Fermi surface in F and reveal that for a quadrupole deformation (prolate), halo tails appear at large distances. We also demonstrate that while in the spherical case the shells are already inverted and close to the neutron emission threshold, a small amount of quadrupole deformation can reduce the gap between shells and increase the role of the continuum, ultimately leading to the negative parity in the g.s. of F and the halo structures in F.

    nucl-thPRC(2021)·17 citations
  2. 02

    Three-body model of the d+A system in an antisymmetrised, translationally invariant many nucleon theory

    R.C.Johnson

    This paper concerns the theory of direct A(d,p)B reactions and how practical 3-body models of them are related to optical model potentials describing the interaction of the deuteron's constituents and the target A. A new definition of the nucleon optical potential is introduced which necessitates a careful examination of the boundary conditions involved in the associate coupled channels problem. The new definition turns out to be convenient for making a connection with the theory of the (d,p) reaction. The analysis is carried out within an antisymmetrised, translationally invariant formalism and provides a firm basis from a many-body point of view for the three-body force effects calculated in previous work by Dinmore, Timofeyk, Al-Khalili and Johnson.

    nucl-thnucl-exPRC(2021)·2 citations
  3. 03

    Formal Aspects of Quantum Decay

    D. F. Ramírez Jiménez · N. G. Kelkar

    The Fock-Krylov formalism for the calculation of survival probabilities of unstable states is revisited paying particular attention to the mathematical constraints on the density of states, the Fourier transform of which gives the survival amplitude. We show that it is not possible to construct a density of states corresponding to a purely exponential survival amplitude. he survival probability and the autocorrelation function of the density of states are shown to form a pair of cosine Fourier transforms. This result is a particular case of the Wiener Khinchin theorem and forces to be an even function of time which in turn forces the density of states to contain a form factor which vanishes at large energies. Subtle features of the transition regions from the non-exponential to the exponential at small times and the exponential to the power law decay at large times are discussed by expressing as a function of the number of oscillations, , performed by it. The transition at short times is shown to occur when the survival probability has completed one oscillation. The number of oscillations depend on the properties of the resonant state and a complete description of the evolution of the unstable state is provided by determining the limits on the number of oscillations in each region.

    quant-phhep-phnucl-thPRA(2021)·12 citations

Affiliations

first authorsco-authorsvia INSPIRE