PaperPanorama

Nuclear Theory·nucl-th

Friday·September 21, 2018

5 papers2 primary·3 cross-listed

  1. 01

    Natural orbitals for ab initio no-core shell model calculations

    Alexander Tichai🇩🇪 · Julius Müller🇩🇪 · Klaus Vobig🇩🇪 · Robert Roth🇩🇪

    We explore the impact of optimizations of the single-particle basis on the convergence behavior and robustness of ab initio no-core shell model calculations. Our focus is on novel basis sets defined by the natural orbitals of a correlated one-body density matrix that is obtained in second-order many-body perturbation theory. Using a perturbatively improved density matrix as starting point informs the single-particle basis about the dominant correlation effects on the global structure of the many-body state, while keeping the computational cost for the basis optimization at a minimum. Already the comparison of the radial single-particle wavefunctions reveals the superiority of the natural-orbital basis compared to a Hartree-Fock or harmonic oscillator basis, and it highlights pathologies of the Hartree-Fock basis. We compare the model-space convergence of energies, root-mean-square radii, and selected electromagnetic observables with all three basis sets for selected p-shell nuclei using chiral interactions with explicit three-nucleon terms. In all cases the natural-orbital basis provides the fastest and most robust convergence, making it the most efficient basis for no-core shell model calculations. As an application we present no-core shell model calculations for the ground-state energies of all oxygen isotopes and assess the accuracy of the normal-ordered two-body approximation of the three-nucleon interaction in the natural-orbital basis.

    nucl-thPRC(2019)·67 citations
  2. 02

    Transport responses from rate of decay and scattering processes in the Nambu--Jona-Lasinio model

    Sabyasachi Ghosh🇮🇳 · Fernando E. Serna🇧🇷 · Aman Abhishek🇮🇳 · Gastao Krein🇧🇷 · Hiranmaya Mishra🇮🇳

    We have calculated quark and anti-quark relaxation time by considering different possible elastic and inelastic scatterings in the medium. Comparative role of these elastic and inelastic scatterings on different transport coefficients are explored. The quark-meson effective interaction Lagrangian density in the framework of Nambu--Jona-Lasinio model is used for calculating both type of scatterings. Owing to a kinetic threshold, inelastic scatterings can only exist beyond the Mott line in temperature and chemical potential plane, whereas elastic scatterings occur in the entire plane. Interestingly, the strength of inelastic scatterings near and above Mott line becomes so strong that medium behaves like a perfect fluid, in that all transport coefficients become very small.

    nucl-thhep-phPRD(2019)·22 citations

Affiliations

first authorsco-authorsvia INSPIRE