https://doi.org/10.1140/epja/i2019-12771-9
Regular Article - Theoretical Physics
Nuclear response in a finite-temperature relativistic framework
1
Department of Physics, Western Michigan University, 49008, Kalamazoo, MI, USA
2
National Superconducting Cyclotron Laboratory, Michigan State University, 48824, East Lansing, MI, USA
* e-mail: elena.litvinova@wmich.edu
Received:
18
January
2019
Accepted:
13
May
2019
Published online:
2
December
2019
A thermal extension of the relativistic nuclear field theory is formulated for the nuclear response. The Bethe-Salpeter equation (BSE) with the time-dependent kernel for the particle-hole response is treated within the Matsubara Green’s function formalism. We show that, with the help of a temperature-dependent projection operator on the subspace of the imaginary time (time blocking), it is possible to reduce the BSE for the nuclear response function to a single frequency variable equation also at finite temperature. The approach is implemented self-consistently in the framework of quantum hadrodynamics based on the meson-nucleon Lagrangian. The method is applied to the monopole, dipole and quadrupole response of 48Ca and to the dipole response of the tin isotopes 100, 120, 132Sn, in particular, to a study of the evolution of nuclear collective oscillations with temperature. The article is dedicated to the memory of Pier Francesco Bortignon and devoted to the developments related to his pioneering ideas.
© Società Italiana di Fisica and Springer-Verlag GmbH Germany, part of Springer Nature, 2019