Resonant nuclear reaction Mg Al in strongly screening magnetized neutron star crust
arXiv:1701.01088 · doi:10.1088/1674-1137/41/12/125102
Abstract
Basing on the relativistic theory in superstrong magnetic fields (SMFs), we investigate the influence of strong electron screening (SES) on the rates of nuclear reaction Mg Al by three models of Lai (LD), Fushiki et al. (FGP), and Liu et al. (LJ) on the surface of magnetars. Our results show that the rates can be greatly enhanced by three orders of magnitude due to the influence of SES. The rates in our model are in good agreement with those of LD and FGP at relatively low density environment (e.g. ) for . On the other hand, in relatively high magnetic fields (e.g. ), the rates of our model can be 1.58 times and around three orders of magnitude larger than those of FGP and LD, respectively. The significant increase of the rates of our model for Mg Al implies that more Mg will escape from the Ne-Na cycle due to SES in SMFs. As a consequence, the next reaction Al Mg will produce more Mg to participate in the Mg-Al cycle. Thus, it may lead to synthesize a large amount of production of nuclides (e.g. Al) on the surface of magnetars. These heavy elements (e.g. Al) may be thrown out due to the compact binary mergers of double neutron star (NS-NS) or black hole and neutron star (BH and NS) systems. Our results may help to understand why the Al is always overabundance in the interstellar space. Our conclusion may be helpful to the investigation of the nucleosynthesis of some heavy elements, the energy generation rate, and the numerical calculations of magnetars evolution.
44 pages, 6 figures, Accepted for publication in Chinese Physics C
References in corpus (5)
- The physics of strong magnetic fields in neutron stars
- Electron capture of strongly screening nuclides Fe, Co, Ni , Mn ,Cr and V in presupernova
- Numerically Fitting The Electron Fermi Energy and The Electron Fraction in A Neutron Star
- Electron capture of iron group nuclei in magnetars
- Modified Fermi Energy of Electrons in a Superhigh Magnetic Field