English

Spin Hall effect in heavy ion collisions

Nuclear Theory 2021-10-04 v4 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

Spin Hall effect (SHE) is the generation of spin current due to an electric field, and has been observed in a variety of materials. The analogous spin Hall current can be induced by chemical potential and temperature gradient, both of which are present in hot and dense nuclear matter created in heavy-ion collisions. In this letter, we investigate the perspective of detecting spin Hall current experimentally. We propose to measure "directed spin flow", the first Fourier coefficients of local spin polarization of Λ\Lambda (Λˉ\bar{\Lambda}) hyperon, at central collisions to probe spin Hall current. To quantify induced spin current, we evaluate relevant transport coefficients using thermal field theory. We benchmark the magnitude of the induced "directed spin flow" at two representatively collisions energies, namely sNN=200 GeV\sqrt{s}_{NN}=200~{\rm GeV} and sNN=19.6 GeV\sqrt{s}_{NN}=19.6~{\rm GeV}, by employing a phenomenologically motivated freeze-out prescription. At both beam energies, the resulting "directed spin flow" ranges from 10410^{-4} to 10310^{-3}, and is very sensitive to the rapidity.

Keywords

Cite

@article{arxiv.2006.12421,
  title  = {Spin Hall effect in heavy ion collisions},
  author = {Shuai Y. F. Liu and Yi Yin},
  journal= {arXiv preprint arXiv:2006.12421},
  year   = {2021}
}

Comments

8 pages, 4 figures; published version

R2 v1 2026-06-23T16:31:43.286Z