arXiv Analytics

Sign in

arXiv:nucl-th/0607029AbstractReferencesReviewsResources

Spin polarized neutron matter within the Dirac-Brueckner-Hartree-Fock approach

F. Sammarruca, P. G. Krastev

Published 2006-07-16, updated 2007-01-17Version 2

The relation between energy and density (known as the nuclear equation of state) plays a major role in a variety of nuclear and astrophysical systems. Spin and isospin asymmetries can have a dramatic impact on the equation of state and possibly alter its stability conditions. An example is the possible manifestation of ferromagnetic instabilities, which would indicate the existence, at a certain density, of a spin-polarized state with lower energy than the unpolarized one. This issue is being discussed extensively in the literature and the conclusions are presently very model dependent. We will report and discuss our recent progress in the study of spin-polarized neutron matter. The approach we take is microscopic and relativistic. The calculated neutron matter properties are derived from realistic nucleon-nucleon interactions. This makes it possible to understand the nature of the EOS properties in terms of specific features of the nuclear force model.

Related articles: Most relevant | Search more
arXiv:0707.2681 [nucl-th] (Published 2007-07-18, updated 2007-07-26)
Shear viscosity of neutron matter from realistic nucleon-nucleon interactions
arXiv:0911.0378 [nucl-th] (Published 2009-11-02)
Response of spin polarized neutron matter under the presence of a strong magnetic field with Skyrme interactions
arXiv:nucl-th/0506016 (Published 2005-06-06)
Microscopic calculations of spin polarized neutron matter at finite temperature