English

Influence of the neutron-skin effect on nuclear isobar collisions at RHIC

Nuclear Theory 2020-07-08 v2 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

The unambiguous observation of a Chiral Magnetic Effect (CME)-driven charge separation is the core aim of the isobar program at RHIC consisting of 4096{^{96}_{40}}Zr+4096{^{96}_{40}}Zr and 4496{^{96}_{44}}Ru+4496{^{96}_{44}}Ru collisions at sNN ⁣= ⁣200\sqrt {s_{\rm NN}}\!=\!200 GeV. We quantify the role of the spatial distributions of the nucleons in the isobars on both eccentricity and magnetic field strength within a relativistic hadronic transport approach (SMASH, Simulating Many Accelerated Strongly-interacting Hadrons). In particular, we introduce isospin-dependent nucleon-nucleon spatial correlations in the geometric description of both nuclei, deformation for 4496{^{96}_{44}}Ru and the so-called neutron skin effect for the neutron-rich isobar i.e. 4096{^{96}_{40}}Zr. The main result of this study is a reduction of the magnetic field strength difference between 4496{^{96}_{44}}Ru+4496{^{96}_{44}}Ru and 4096{^{96}_{40}}Zr+4096{^{96}_{40}}Zr by a factor of 2, from 10%10\% to 5%5\% in peripheral collisions when the neutron-skin effect is included. Further, we find an increase of eccentricity by up to 10%\% when deformation is taken into account while neither the neutron skin effect nor the nucleon-nucleon correlations result into a significant modification of this observable with respect to the traditional Woods-Saxon modeling. Our results suggest a significantly smaller CME signal to background ratio for the experimental charge separation measurement in peripheral collisions with the isobar systems than previously expected.

Keywords

Cite

@article{arxiv.1908.10231,
  title  = {Influence of the neutron-skin effect on nuclear isobar collisions at RHIC},
  author = {Jan Hammelmann and Alba Soto-Ontoso and Massimiliano Alvioli and Hannah Elfner and Mark Strikman},
  journal= {arXiv preprint arXiv:1908.10231},
  year   = {2020}
}

Comments

6 pages, 3 figures, v2: bug in the implementation of the deformation has been fixed. Conclusions remain intact